face-api/dist/tfjs.esm.js

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/*
Face-API
homepage: <https://github.com/vladmandic/face-api>
author: <https://github.com/vladmandic>'
*/
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Actual: ${n}.
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Actual: ${n}.
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Expected: ${s}.`)}}function SV(r,e){r().then(()=>e.fail(),()=>e())}function TV(r,e){let t=typeof e=="string"||typeof e=="number"||typeof e=="boolean"?[e]:e;return as(r)||as(r[0])||as(e)||as(e[0])?Yb(r,t,(o,n)=>o==n):Yb(r,e,(o,n)=>Zb(o,n,0))}function EV(r,e,t){if(t==null&&(t=Xb()),!Zb(r,e,t))throw new Error(`Numbers differ: actual === ${r}, expected === ${e}`)}function Zb(r,e,t){return!isFinite(r)&&!isFinite(e)?!0:!(isNaN(r)||isNaN(e)||Math.abs(r-e)>t)}function AV(r,e,t){for(let o=0;o<r.length;o++)if(r[o]<e||r[o]>t)throw new Error(`Value out of range:${r[o]} low: ${e}, high: ${t}`)}function DV(r,e){expect(new Float32Array(r)).toEqual(new Float32Array(e))}function WN(r){for(let e=0;e<r.length;e++){let t=r[e];Array.isArray(t)?WN(t):r[e]=rl(t)}return r}var Jb="2.8.5";function $V(){W().set("PROD",!0)}function RV(){W().set("DEBUG",!0)}function FV(){W().set("DEPRECATION_WARNINGS_ENABLED",!1),console.warn("TensorFlow.js deprecation warnings have been disabled.")}function Ot(r){W().getBool("DEPRECATION_WARNINGS_ENABLED")&&console.warn(r+" You can disable deprecation warnings with tf.disableDeprecationWarnings().")}qI(Ot);function OV(){E.disposeVariables()}function Ns(){return E}function jc(){return E.memory()}function PV(r){return E.profile(r)}function V(r,e){return E.tidy(r,e)}function Ae(r){wm(r).forEach(t=>t.dispose())}function At(r){return E.keep(r)}function MV(r){return E.time(r)}function GN(r){return E.setBackend(r)}function LV(){return E.ready()}function zV(){return E.backendName}function BV(r){E.removeBackend(r)}function VV(r){return E.findBackend(r)}function WV(r){return E.findBackendFactory(r)}function _u(r,e,t=1){return E.registerBackend(r,e,t)}function Qb(){return E.backend}function GV(r,e){W().setPlatform(r,e)}function UV(r,e){let t=v(r,"a","add"),o=v(e,"b","add");[t,o]=Ge(t,o);let n={a:t,b:o};return E.runKernel(_o,n)}var Q=N({add_:UV});function jV(r,e){let t=v(r,"a","floorDiv"),o=v(e,"b","floorDiv");[t,o]=Ge(t,o);let n={a:t,b:o};return E.runKernel(an,n)}var wu=N({floorDiv_:jV});function qV(r,e){let t=v(r,"a","div"),o=v(e,"b","div");if([t,o]=Ge(t,o),t.dtype==="int32"&&o.dtype==="int32")return wu(t,o);let n={a:t,b:o},s={};return E.runKernel(on,n,s)}var fe=N({div_:qV});function HV(r,e){let t=v(r,"a","mul"),o=v(e,"b","mul");[t,o]=Ge(t,o);let n={a:t,b:o};return E.runKernel(yn,n)}var O=N({mul_:HV});function KV(r){let e=v(r,"x","abs");if(e.dtype==="complex64"){let t={x:e};return E.runKernel(ia,t)}else{let t={x:e};return E.runKernel(ls,t)}}var Tt=N({abs_:KV});function XV(r){let t={x:v(r,"x","acos")};return E.runKernel(Hs,t)}var km=N({acos_:XV});function YV(r){let t={x:v(r,"x","acosh")};return E.runKernel(Ks,t)}var Cm=N({acosh_:YV});function ZV(r){T(Array.isArray(r),()=>"The argument passed to tf.addN() must be a list of tensors"),T(r.length>=1,()=>`Must pass at least one tensor to tf.addN(), but got ${r.length}`);let e=r.map((n,s)=>v(n,`tensors${s}`,"addN")),t=e[0];e.forEach(n=>{if(n.dtype!==t.dtype)throw new Error("All tensors passed to tf.addN() must have the same dtype")}),e.forEach(n=>{if(!Ur(n.shape,t.shape))throw new Error("All tensors passed to tf.addN() must have the same shape")});let o=e;return E.runKernel(Ko,o)}var e_=N({addN_:ZV});function JV(r,e=null,t=!1){let n={x:v(r,"x","all","bool")},s={axis:e,keepDims:t};return E.runKernel(Gl,n,s)}var vu=N({all_:JV});function QV(r,e=null,t=!1){let n={x:v(r,"x","any","bool")},s={axis:e,keepDims:t};return E.runKernel(Ul,n,s)}var il=N({any_:QV});function eW(r,e=0){let o={x:v(r,"x","argMax")},n={axis:e};return E.runKernel(Xo,o,n)}var al=N({argMax_:eW});function tW(r,e=0){let o={x:v(r,"x","argMin")},n={axis:e};return E.runKernel(oa,o,n)}var Im=N({argMin_:tW});function rW(r){let t={x:v(r,"x","asin")};return E.runKernel(Xs,t)}var Nm=N({asin_:rW});function oW(r){let t={x:v(r,"x","asinh")};return E.runKernel(Ys,t)}var Sm=N({asinh_:oW});function nW(r){let t={x:v(r,"x","atan")};return E.runKernel(Zs,t)}var Tm=N({atan_:nW});function sW(r,e){let t=v(r,"a","atan2"),o=v(e,"b","atan2");[t,o]=Ge(t,o);let n={a:t,b:o};return E.runKernel(Qs,n)}var Em=N({atan2_:sW});function iW(r){let t={x:v(
with dtype ${s.dtype}. `)}),t.length===1)return Oo(t[0]);let o=t,n={axis:e};return E.runKernel(us,o,n)}var Qe=N({concat_:gW});function xW(r){let t={x:v(r,"x","sigmoid")};return E.runKernel(An,t)}var Hr=N({sigmoid_:xW});function yW(r,e,t){let o=v(r,"x","slice","string_or_numeric");if(o.rank===0)throw new Error("Slicing scalar is not possible");let n={x:o},s={begin:e,size:t};return E.runKernel(ys,n,s)}var Oe=N({slice_:yW});function bW(r){let t={x:v(r,"x","tanh")};return E.runKernel(Pn,t)}var Mi=N({tanh_:bW});function _W(r,e,t,o,n,s){let a=v(r,"forgetBias","basicLSTMCell"),i=v(e,"lstmKernel","basicLSTMCell"),l=v(t,"lstmBias","basicLSTMCell"),u=v(o,"data","basicLSTMCell"),c=v(n,"c","basicLSTMCell"),p=v(s,"h","basicLSTMCell"),m=Qe([u,p],1),f=Ue(m,i),d=Q(f,l),h=d.shape[0],g=d.shape[1]/4,x=[h,g],b=Oe(d,[0,0],x),_=Oe(d,[0,g],x),w=Oe(d,[0,g*2],x),C=Oe(d,[0,g*3],x),D=Q(O(Hr(b),Mi(_)),O(c,Hr(Q(a,w)))),A=O(Mi(D),Hr(C));return[D,A]}var wW=N({basicLSTMCell_:_W});function vW(r,e,t){let o=v(r,"x","batchToSpaceND"),n=e.reduce((i,l)=>i*l);T(o.rank>=1+e.length,()=>`input rank is ${o.rank} but should be > than blockShape.length ${e.length}`),T(t.length===e.length,()=>`crops.length is ${t.length} but should be equal to blockShape.length ${e.length}`),T(o.shape[0]%n==0,()=>`input tensor batch is ${o.shape[0]} but is not divisible by the product of the elements of blockShape ${e.join(" * ")} === ${n}`);let s={x:o},a={blockShape:e,crops:t};return E.runKernel(sa,s,a)}var Ca=N({batchToSpaceND_:vW});function qN(r){let e;return r.rank===0||r.rank===1?e=L(r,[1,1,1,r.size]):r.rank===2?e=L(r,[1,1,r.shape[0],r.shape[1]]):r.rank===3?e=L(r,[1,r.shape[0],r.shape[1],r.shape[2]]):e=r,e}function kW(r,e,t,o,n,s){s==null&&(s=.001);let a=v(r,"x","batchNorm"),i=v(e,"mean","batchNorm"),l=v(t,"variance","batchNorm"),u;n!=null&&(u=v(n,"scale","batchNorm"));let c;o!=null&&(c=v(o,"offset","batchNorm")),T(i.rank===l.rank,()=>"Batch normalization gradient requires mean and variance to have equal ranks."),T(c==null||i.rank===c.rank,()=>"Batch normalization gradient requires mean and offset to have equal ranks."),T(u==null||i.rank===u.rank,()=>"Batch normalization gradient requires mean and scale to have equal ranks.");let m={x:qN(a),scale:u,offset:c,mean:i,variance:l},f={varianceEpsilon:s},d=E.runKernel(ln,m,f);return L(d,a.shape)}var zn=N({batchNorm_:kW});function CW(r,e,t,o,n,s){let a=v(r,"x","batchNorm"),i=v(e,"mean","batchNorm"),l=v(t,"variance","batchNorm"),u;n!=null&&(u=v(n,"scale","batchNorm"));let c;return o!=null&&(c=v(o,"offset","batchNorm")),T(a.rank===2,()=>`Error in batchNorm2D: x must be rank 2 but got rank ${a.rank}.`),T(i.rank===2||i.rank===1,()=>`Error in batchNorm2D: mean must be rank 2 or rank 1 but got rank ${i.rank}.`),T(l.rank===2||l.rank===1,()=>`Error in batchNorm2D: variance must be rank 2 or rank 1 but got rank ${l.rank}.`),u!=null&&T(u.rank===2||u.rank===1,()=>`Error in batchNorm2D: scale must be rank 2 or rank 1 but got rank ${u.rank}.`),c!=null&&T(c.rank===2||c.rank===1,()=>`Error in batchNorm2D: offset must be rank 2 or rank 1 but got rank ${c.rank}.`),zn(a,i,l,c,u,s)}var n_=N({batchNorm2d_:CW});function IW(r,e,t,o,n,s){let a=v(r,"x","batchNorm"),i=v(e,"mean","batchNorm"),l=v(t,"variance","batchNorm"),u;n!=null&&(u=v(n,"scale","batchNorm"));let c;return o!=null&&(c=v(o,"offset","batchNorm")),T(a.rank===3,()=>`Error in batchNorm3D: x must be rank 3 but got rank ${a.rank}.`),T(i.rank===3||i.rank===1,()=>`Error in batchNorm3D: mean must be rank 3 or rank 1 but got rank ${i.rank}.`),T(l.rank===3||l.rank===1,()=>`Error in batchNorm3D: variance must be rank 3 or rank 1 but got rank ${l.rank}.`),u!=null&&T(u.rank===3||u.rank===1,()=>`Error in batchNorm3D: scale must be rank 3 or rank 1 but got rank ${u.rank}.`),c!=null&&T(c.rank===3||c.rank===1,()=>`Error in batchNorm3D: offset must be rank 3 or rank 1 but got rank ${c.rank}.`),zn(a,i,l,c,u,s)}var s_=N({batchNorm3d_:IW});function NW(r,e,t,o,n,s){let a=v(r,"x","batchNorm"),i=v(e,"mean","batchNorm"),l=v(t,"variance","batchNorm"),u;n!=null&&(u=v(n,"scale","batchNorm"));let c;return o!=nul
2021-01-12 16:01:34 +01:00
${n} and ${e} for depthToSpace with input shape
2021-01-20 14:15:38 +01:00
${o.shape}`),T(s*e>=0,()=>`Negative dimension size caused by overflow when multiplying
2021-01-12 16:01:34 +01:00
${s} and ${e} for depthToSpace with input shape
2021-01-20 14:15:38 +01:00
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${s}).`);if(t<o)throw new Error(`batchDims (${o}) must be less than or equal to axis (${t}).`);for(let p=0;p<o;++p)if(r.shape[p]!==e.shape[p])throw new Error(`x.shape[${p}]: ${r.shape[p]} should be equal to indices.shape[${p}]: ${e.shape[p]}.`);let a=r.shape[t],i=[],l=1,u=1,c=1;for(let p=0;p<o;++p)i.push(r.shape[p]),l*=r.shape[p];for(let p=o;p<t;p++)i.push(r.shape[p]),u*=r.shape[p];for(let p=o;p<n;p++)i.push(e.shape[p]);for(let p=t+1;p<s;p++)i.push(r.shape[p]),c*=r.shape[p];return{batchSize:l,sliceSize:c,outerSize:u,dimSize:a,outputShape:i}}function vq(r,e,t){if(e==="complex64"){if(r.dtype==="complex64")return r.clone();let o=mt(r.shape),n=oe(r,"float32"),s=t.complex(n,o);return o.dispose(),n.dispose(),s}if(!mb(r.dtype,e))return E.makeTensorFromDataId(r.dataId,r.shape,e);if(r.dtype==="complex64"){let o=t.real(r),n=oe(o,e);return o.dispose(),n}if(e==="int32")return t.int(r);if(e==="bool"){let o=ue(0,r.dtype),n=t.notEqual(r,o);return o.dispose(),n}else throw new Error(`Error in Cast: failed to cast ${r.dtype} to ${e}`)}function kq(r,e){return E.makeTensorFromDataId(r.dataId,e,r.dtype)}function Cq(r){try{return r.map(e=>Lc(e))}catch(e){throw new Error(`Failed to decode encoded string bytes into utf-8, error: ${e}`)}}function Iq(r){return r.map(e=>rl(e))}var Ar={};tt(Ar,{nonMaxSuppressionV3Impl:()=>ow,nonMaxSuppressionV4Impl:()=>nw,nonMaxSuppressionV5Impl:()=>sw,whereImpl:()=>P_});var gg={kernelName:ls,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>O(r,Ds(oe(t,"float32"),-1))}}};var LS={kernelName:Hs,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>{let o=Me(oe(t,"float32")),n=yt(ce(ue(1),o));return qe(fe(r,n))}}}};var zS={kernelName:Ks,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>{let o=yt(ce(Me(oe(t,"float32")),1));return fe(r,o)}}}};var BS={kernelName:_o,inputsToSave:["a","b"],gradFunc:(r,e)=>{let[t,o]=e,n=Be(t.shape,o.shape);return{a:()=>{let i=r,l=It(t.shape,n);return l.length>0&&(i=_e(i,l)),L(i,t.shape)},b:()=>{let i=r,l=It(o.shape,n);return l.length>0&&(i=_e(i,l)),L(i,o.shape)}}}};var VS={kernelName:Ko,saveAllInputs:!0,gradFunc:(r,e)=>{let t={};return e.forEach((o,n)=>{t[n]=()=>r.clone()}),t}};var WS={kernelName:Xo,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>Ne(t)}}};var GS={kernelName:oa,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>Ne(t)}}};var US={kernelName:Xs,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>fe(r,yt(ce(ue(1),Me(oe(t,"float32")))))}}};var jS={kernelName:Ys,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>{let o=yt(Q(ue(1),Me(oe(t,"float32"))));return fe(r,o)}}}};var qS={kernelName:Qs,inputsToSave:["a","b"],gradFunc:(r,e)=>{let[t,o]=e,n=Be(t.shape,o.shape);return{a:()=>{let i=Q(Me(t),Me(o)),l=O(r,fe(o,i)),u=It(t.shape,n);return u.length>0&&(l=_e(l,u)),L(l,t.shape)},b:()=>{let i=Q(Me(t),Me(o)),l=qe(O(r,fe(t,i))),u=It(o.shape,n);return u.length>0&&(l=_e(l,u)),L(l,o.shape)}}}};var HS={kernelName:Zs,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>fe(r,Q(Me(oe(t,"float32")),1))}}};var KS={kernelName:Js,inputsToSave:["x"],gradFunc:(r,e)=>{let[t]=e;return{x:()=>fe(r,ce(ue(1),Me(oe(t,"float32"))))}}};function Nq(r,e,t,o,n=[1,1,1],s,a){let i=v(r,"dy","avgPool3dGrad"),l=v(e,"input","avgPool3dGrad"),u=i,c=l,p=!1;l.rank===4&&(p=!0,u=L(i,[1,i.shape[0],i.shape[1],i.shape[2],i.shape[3]]),c=L(l,[1,l.shape[0],l.shape[1],l.shape[2],l.shape[3]])),T(u.rank===5,()=>`Error in avgPool3dGrad: dy must be rank 5 but got rank ${u.rank}.`),T(c.rank===5,()=>`Error in avgPool3dGrad: input must be rank 5 but got rank ${c.rank}.`),T(Pt(o,n),()=>`Error in avgPool3dGrad: Either strides or dilations must be 1. Got strides ${o} and dilations '${n}'`),a!=null&&T(it(s),()=>`Error in avgPool3dGrad: pad must be an integer when using, dimRoundingMode ${a} but got pad ${s}.`);let m={dy:u,input:c},f={filterSize:t,strides:o,dilations:n,pad:s,dimRoundingMode:a},d=E.runKernel(ql,m,f);return p?L(d,[d.shape[1],d.shape[2],d.shape[3],d.shape[4]]):d}var XS=N({avgPool3dGrad_:Nq});var YS={kernelName:na,inputsToSave:["x"],gradFunc:(r,e,t)=>{let[o]=e,{filterSize:
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1. The ${o} is defined in Python, in which case it needs to be ported to TensorFlow.js or your JavaScript code.
2. The custom ${o} is defined in JavaScript, but is not registered properly with tf.serialization.registerClass().`);return a}else{let s=r;if(s.className==null||s.config==null)throw new B(`${o}: Improper config format: ${JSON.stringify(s)}.
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'className' and 'config' must set.`);let a=s.className,i,l;if(a in t?[i,l]=t[a]:a in qn?[i,l]=qn.className:a in e&&([i,l]=e[a]),i==null)throw new B(`Unknown ${o}: ${a}. This may be due to one of the following reasons:
2021-01-12 16:01:34 +01:00
1. The ${o} is defined in Python, in which case it needs to be ported to TensorFlow.js or your JavaScript code.
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2. The custom ${o} is defined in JavaScript, but is not registered properly with tf.serialization.registerClass().`);if(l!=null){let u={};for(let f of Object.keys(qn))u[f]=qn[f];for(let f of Object.keys(t))u[f]=t[f];let c=s.config;c.customObjects=u;let p=Object.assign({},qn);for(let f of Object.keys(t))qn[f]=t[f];gw(s.config);let m=l(i,s.config,t,n);return qn=Object.assign({},p),m}else{let u=Object.assign({},qn);for(let p of Object.keys(t))qn[p]=t[p];let c=new i(s.config);return qn=Object.assign({},u),c}}}function Fq(r,e){return r<e?-1:r>e?1:0}function af(r,e){return-1*Fq(r,e)}function Hn(r){if(r==null)return r;let e=[];for(let t of r)e.indexOf(t)===-1&&e.push(t);return e}function RT(r){if(r==null)throw new B(`Invalid value in obj: ${JSON.stringify(r)}`);for(let e in r)if(r.hasOwnProperty(e))return!1;return!0}function Wi(r,e,t){if(t!=null&&r.indexOf(t)<0)throw new B(`${t} is not a valid ${e}. Valid values are ${r} or null/undefined.`)}function yg(r,e,t=0,o=Infinity){return Bo(t>=0),Bo(o>=t),Array.isArray(r)&&r.length>=t&&r.length<=o&&r.every(n=>typeof n===e)}function jt(r,e){Array.isArray(r)?(y.assert(r.length>0,()=>`${e} is unexpectedly an empty array.`),r.forEach((t,o)=>jt(t,`element ${o+1} of ${e}`))):y.assert(Number.isInteger(r)&&r>0,()=>`Expected ${e} to be a positive integer, but got ${FT(r)}.`)}function FT(r){return r===null?"null":Array.isArray(r)?"["+r.map(e=>FT(e)).join(",")+"]":typeof r=="string"?`"${r}"`:`${r}`}function OT(r,e){let t=y.now(),o;return(...s)=>{let a=y.now();return a-t<e||(t=a,o=r(...s)),o}}function bg(r){return r==="relu"?"relu":r==="linear"?"linear":r==="elu"?"elu":null}function xw(r,e){return V(()=>yt(_e(O(r,r),e,!0)))}var lp=class extends ee.Serializable{getConfig(){return{}}},lf=class extends lp{constructor(e){super();this.defaultMaxValue=2,this.defaultAxis=0,this.maxValue=e.maxValue!=null?e.maxValue:this.defaultMaxValue,this.axis=e.axis!=null?e.axis:this.defaultAxis}apply(e){return V(()=>{let t=xw(e,this.axis),o=ir(t,0,this.maxValue);return O(e,fe(o,Q(Qt(),t)))})}getConfig(){return{maxValue:this.maxValue,axis:this.axis}}};lf.className="MaxNorm";ee.registerClass(lf);var uf=class extends lp{constructor(e){super();this.defaultAxis=0,this.axis=e.axis!=null?e.axis:this.defaultAxis}apply(e){return V(()=>fe(e,Q(Qt(),xw(e,this.axis))))}getConfig(){return{axis:this.axis}}};uf.className="UnitNorm";ee.registerClass(uf);var cf=class extends lp{apply(e){return Tr(e)}};cf.className="NonNeg";ee.registerClass(cf);var pf=class extends lp{constructor(e){super();this.defaultMinValue=0,this.defaultMaxValue=1,this.defaultRate=1,this.defaultAxis=0,this.minValue=e.minValue!=null?e.minValue:this.defaultMinValue,this.maxValue=e.maxValue!=null?e.maxValue:this.defaultMaxValue,this.rate=e.rate!=null?e.rate:this.defaultRate,this.axis=e.axis!=null?e.axis:this.defaultAxis}apply(e){return V(()=>{let t=xw(e,this.axis),o=Q(O(this.rate,ir(t,this.minValue,this.maxValue)),O(1-this.rate,t));return O(e,fe(o,Q(Qt(),t)))})}getConfig(){return{minValue:this.minValue,maxValue:this.maxValue,rate:this.rate,axis:this.axis}}};pf.className="MinMaxNorm";ee.registerClass(pf);var PT={maxNorm:"MaxNorm",minMaxNorm:"MinMaxNorm",nonNeg:"NonNeg",unitNorm:"UnitNorm"};function Mt(r){return ap(r)}function MT(r,e={}){return Vi(r,ee.SerializationMap.getMap().classNameMap,e,"constraint")}function Lt(r){if(r==null)return null;if(typeof r=="string"){let t={className:r in PT?PT[r]:r,config:{}};return MT(t)}else return r instanceof lp?r:MT(r)}function Oq(r){return new lf(r)}function Pq(r){return new uf(r)}function Mq(){return new cf}function Lq(r){return new pf(r)}var kw={};tt(kw,{constant:()=>qq,glorotNormal:()=>Qq,glorotUniform:()=>Jq,heNormal:()=>eH,heUniform:()=>tH,identity:()=>Yq,leCunNormal:()=>rH,leCunUniform:()=>oH,ones:()=>jq,orthogonal:()=>nH,randomNormal:()=>Kq,randomUniform:()=>Hq,truncatedNormal:()=>Xq,varianceScaling:()=>Zq,zeros:()=>Uq});var LT=["channelsFirst","channelsLast"],zT=["nearest","bilinear"],BT=["valid","same","causal"],VT=["max","avg"],WT=["sum","mul","concat","ave"];var up=new Map;function $t(r){Wi(LT,"DataFormat",r)}function
because the value dtype is ${t.dtype}, but TensorArray dtype is ${this.dtype}.`);if(this.size()===0&&(this.elementShape==null||this.elementShape.length===0)&&(this.elementShape=t.shape),So(this.elementShape,t.shape,`TensorArray ${this.name}: Could not write to TensorArray index ${e}.`),o.read)throw new Error(`TensorArray ${this.name}: Could not write to TensorArray index ${e}, because it has already been read.`);if(o.written)throw new Error(`TensorArray ${this.name}: Could not write to TensorArray index ${e}, because it has already been written.`);o.tensor=t,At(t),o.written=!0,this.tensors[e]=o}writeMany(e,t){if(e.length!==t.length)throw new Error(`TensorArray ${this.name}: could not write multiple tensors,because the index size: ${e.length} is not the same as tensors size: ${t.length}.`);e.forEach((o,n)=>this.write(o,t[n]))}gather(e,t){if(!!t&&t!==this.dtype)throw new Error(`TensorArray dtype is ${this.dtype} but gather requested dtype ${t}`);if(e)e=e.slice(0,this.size());else{e=[];for(let n=0;n<this.size();n++)e.push(n)}if(e.length===0)return Fr([],[0].concat(this.elementShape));let o=this.readMany(e);return So(this.elementShape,o[0].shape,"TensorArray shape mismatch: "),Wt(o,0)}concat(e){if(!!e&&e!==this.dtype)throw new Error(`TensorArray dtype is ${this.dtype} but concat requested dtype ${e}`);if(this.size()===0)return Fr([],[0].concat(this.elementShape));let t=[];for(let n=0;n<this.size();n++)t.push(n);let o=this.readMany(t);return So(this.elementShape,o[0].shape,`TensorArray shape mismatch: tensor array shape (${this.elementShape}) vs first tensor shape (${o[0].shape})`),Qe(o,0)}scatter(e,t){if(t.dtype!==this.dtype)throw new Error(`TensorArray dtype is ${this.dtype} but tensor has dtype ${t.dtype}`);if(e.length!==t.shape[0])throw new Error(`Expected len(indices) == tensor.shape[0], but saw: ${e.length} vs. ${t.shape[0]}`);let o=Math.max(...e);if(!this.dynamicSize&&o>=this.maxSize)throw new Error(`Max index must be < array size (${o} vs. ${this.maxSize})`);this.writeMany(e,cr(t,0))}split(e,t){if(t.dtype!==this.dtype)throw new Error(`TensorArray dtype is ${this.dtype} but tensor has dtype ${t.dtype}`);let o=0,n=e.map(l=>(o+=l,o));if(o!==t.shape[0])throw new Error(`Expected sum of lengths to be equal to
tensor.shape[0], but sum of lengths is
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${o}, and tensor's shape is: ${t.shape}`);if(!this.dynamicSize&&e.length!==this.maxSize)throw new Error(`TensorArray's size is not equal to the size of lengths (${this.maxSize} vs. ${e.length}), and the TensorArray is not marked as dynamically resizeable`);let s=o===0?0:t.size/o,a=[];V(()=>{t=L(t,[1,o,s]);for(let l=0;l<e.length;++l){let u=l===0?0:n[l-1],c=[0,u,0],p=[1,e[l],s];a[l]=L(Oe(t,c,p),this.elementShape)}return a});let i=[];for(let l=0;l<e.length;l++)i[l]=l;this.writeMany(i,a)}};var nc=class{constructor(e,t,o,n=-1){this.tensors=e,this.elementShape=t,this.elementDtype=o,e!=null&&e.forEach(s=>{if(o!==s.dtype)throw new Error(`Invalid data types; op elements ${o}, but list elements ${s.dtype}`);So(t,s.shape,"TensorList shape mismatch: "),At(s)}),this.idTensor=ue(0),this.maxNumElements=n,At(this.idTensor)}get id(){return this.idTensor.id}copy(){return new nc([...this.tensors],this.elementShape,this.elementDtype)}clearAndClose(e){this.tensors.forEach(t=>{(e==null||!e.has(t.id))&&t.dispose()}),this.tensors.length=0,this.idTensor.dispose()}size(){return this.tensors.length}stack(e,t,o=-1){if(t!==this.elementDtype)throw new Error(`Invalid data types; op elements ${t}, but list elements ${this.elementDtype}`);if(o!==-1&&this.tensors.length!==o)throw new Error(`Operation expected a list with ${o} elements but got a list with ${this.tensors.length} elements.`);return So(e,this.elementShape,"TensorList shape mismatch: "),V(()=>{let n=this.tensors.map(s=>L(s,e));return Wt(n,0)})}popBack(e,t){if(t!==this.elementDtype)throw new Error(`Invalid data types; op elements ${t}, but list elements ${this.elementDtype}`);if(this.size()===0)throw new Error("Trying to pop from an empty list.");let o=this.tensors.pop();return So(o.shape,e,"TensorList shape mismatch: "),L(o,e)}pushBack(e){if(e.dtype!==this.elementDtype)throw new Error(`Invalid data types; op elements ${e.dtype}, but list elements ${this.elementDtype}`);if(So(e.shape,this.elementShape,"TensorList shape mismatch: "),this.maxNumElements===this.size())throw new Error("Trying to push element into a full list.");At(e),this.tensors.push(e)}resize(e){if(e<0)throw new Error(`TensorListResize expects size to be non-negative. Got: ${e}`);if(this.maxNumElements!==-1&&e>this.maxNumElements)throw new Error(`TensorListResize input size ${e} is greater maxNumElement ${this.maxNumElements}.`);this.tensors.length=e}getItem(e,t,o){if(o!==this.elementDtype)throw new Error(`Invalid data types; op elements ${o}, but list elements ${this.elementDtype}`);if(e<0||e>this.tensors.length)throw new Error(`Trying to access element ${e} in a list with ${this.tensors.length} elements.`);if(this.tensors[e]==null)throw new Error(`element at index ${e} is null.`);return So(this.tensors[e].shape,t,"TensorList shape mismatch: "),this.tensors[e]}setItem(e,t){if(t.dtype!==this.elementDtype)throw new Error(`Invalid data types; op elements ${t.dtype}, but list elements ${this.elementDtype}`);if(e<0||this.maxNumElements!==-1&&e>=this.maxNumElements)throw new Error(`Trying to set element ${e} in a list with max ${this.maxNumElements} elements.`);So(this.elementShape,t.shape,"TensorList shape mismatch: "),At(t),this.tensors[e]=t}gather(e,t,o){if(t!==this.elementDtype)throw new Error(`Invalid data types; op elements ${t}, but list elements ${this.elementDtype}`);return So(this.elementShape,o,"TensorList shape mismatch: "),e=e.slice(0,this.size()),e.length===0?Fr([],[0].concat(this.elementShape)):V(()=>{let n=e.map(s=>L(this.tensors[s],o));return Wt(n,0)})}concat(e,t){if(!!e&&e!==this.elementDtype)throw new Error(`TensorList dtype is ${this.elementDtype} but concat requested dtype ${e}`);return So(this.elementShape,t,"TensorList shape mismatch: "),this.size()===0?Fr([],[0].concat(this.elementShape)):V(()=>{let o=this.tensors.map(n=>L(n,t));return Qe(o,0)})}};function Q1(r,e,t){let o=r.dtype;if(r.shape.length<1)throw new Error(`Tensor must be at least a vector, but saw shape: ${r.shape}`);if(r.dtype!==t)throw new Error(`Invalid data types; op elements ${r.dtype}, but list elements ${t}`);let n=r.shape.slice(1);So
tensor.shape[0], but sum of lengths is
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${o}, and tensor's shape is: ${r.shape}`);let s=o===0?0:r.size/o,a=V(()=>{let l=[];r=L(r,[1,o,s]);for(let u=0;u<e.length;++u){let c=u===0?0:n[u-1],p=[0,c,0],m=[1,e[u],s];l[u]=L(Oe(r,p,m),t)}return r.dispose(),l}),i=new nc([],t,r.dtype,e.length);for(let l=0;l<a.length;l++)i.setItem(l,a[l]);return i}var oE=async(r,e,t)=>{switch(r.op){case"If":case"StatelessIf":{let o=k("thenBranch",r,e,t),n=k("elseBranch",r,e,t),s=k("cond",r,e,t),a=k("args",r,e,t);return(await s.data())[0]?t.functionMap[o].executeFunctionAsync(a,t.tensorArrayMap,t.tensorListMap):t.functionMap[n].executeFunctionAsync(a,t.tensorArrayMap,t.tensorListMap)}case"While":case"StatelessWhile":{let o=k("body",r,e,t),n=k("cond",r,e,t),s=k("args",r,e,t),a=await t.functionMap[n].executeFunctionAsync(s,t.tensorArrayMap,t.tensorListMap),i=s.map(c=>c.id),l=await a[0].data();a.forEach(c=>{!c.kept&&i.indexOf(c.id)===-1&&c.dispose()});let u=s;for(;l[0];){let c=u;u=await t.functionMap[o].executeFunctionAsync(u,t.tensorArrayMap,t.tensorListMap);let p=u.map(f=>f.id);c.forEach(f=>{!f.kept&&i.indexOf(f.id)===-1&&p.indexOf(f.id)===-1&&f.dispose()});let m=await t.functionMap[n].executeFunctionAsync(u,t.tensorArrayMap,t.tensorListMap);l=await m[0].data(),m.forEach(f=>{!f.kept&&i.indexOf(f.id)===-1&&p.indexOf(f.id)===-1&&f.dispose()})}return u}case"LoopCond":{let o=k("pred",r,e,t);return[zs(o)]}case"Switch":{let o=k("pred",r,e,t),n=k("data",r,e,t);return n.kept||(n=zs(n)),(await o.data())[0]?[void 0,n]:[n,void 0]}case"Merge":{let o=r.inputNames.find(n=>gr(n,e,t)!==void 0);if(o){let n=gr(o,e,t);return[zs(n)]}return}case"Enter":{let o=k("frameName",r,e,t),n=k("tensor",r,e,t);return t.enterFrame(o),[zs(n)]}case"Exit":{let o=k("tensor",r,e,t);return t.exitFrame(),[zs(o)]}case"NextIteration":{let o=k("tensor",r,e,t);return t.nextIteration(),[zs(o)]}case"TensorArrayV3":{let o=k("size",r,e,t),n=k("dtype",r,e,t),s=k("elementShape",r,e,t),a=k("dynamicSize",r,e,t),i=k("clearAfterRead",r,e,t),l=k("identicalElementShapes",r,e,t),u=k("name",r,e,t),c=new $v(u,n,o,s,l,a,i);return t.addTensorArray(c),[c.idTensor,ue(1)]}case"TensorArrayWriteV3":{let o=k("tensorArrayId",r,e,t),n=k("index",r,e,t),s=k("tensor",r,e,t),a=t.getTensorArray(o.id);return a.write(n,s),[a.idTensor]}case"TensorArrayReadV3":{let o=k("tensorArrayId",r,e,t),n=k("index",r,e,t);return[t.getTensorArray(o.id).read(n)]}case"TensorArrayGatherV3":{let o=k("tensorArrayId",r,e,t),n=k("indices",r,e,t),s=k("dtype",r,e,t);return[t.getTensorArray(o.id).gather(n,s)]}case"TensorArrayScatterV3":{let o=k("tensorArrayId",r,e,t),n=k("indices",r,e,t),s=k("tensor",r,e,t),a=t.getTensorArray(o.id);return a.scatter(n,s),[a.idTensor]}case"TensorArrayConcatV3":{let o=k("tensorArrayId",r,e,t),n=t.getTensorArray(o.id),s=k("dtype",r,e,t);return[n.concat(s)]}case"TensorArraySplitV3":{let o=k("tensorArrayId",r,e,t),n=k("tensor",r,e,t),s=k("lengths",r,e,t),a=t.getTensorArray(o.id);return a.split(s,n),[a.idTensor]}case"TensorArraySizeV3":{let o=k("tensorArrayId",r,e,t),n=t.getTensorArray(o.id);return[ue(n.size(),"int32")]}case"TensorArrayCloseV3":{let o=k("tensorArrayId",r,e,t),n=t.getTensorArray(o.id);return n.clearAndClose(),[n.idTensor]}case"TensorListSetItem":{let o=k("tensorListId",r,e,t),n=k("index",r,e,t),s=k("tensor",r,e,t),a=t.getTensorList(o.id);return a.setItem(n,s),[a.idTensor]}case"TensorListGetItem":{let o=k("tensorListId",r,e,t),n=k("index",r,e,t),s=k("elementShape",r,e,t),a=k("elementDType",r,e,t);return[t.getTensorList(o.id).getItem(n,s,a)]}case"TensorListScatterV2":case"TensorListScatter":{let o=k("indices",r,e,t),n=k("tensor",r,e,t),s=k("elementShape",r,e,t),a=k("numElements",r,e,t),i=tE(n,o,s,a);return t.addTensorList(i),[i.idTensor]}case"TensorListReserve":case"EmptyTensorList":{let o=k("elementShape",r,e,t),n=k("elementDType",r,e,t),s;r.op==="TensorListReserve"?s="numElements":s="maxNumElements";let a=k(s,r,e,t),i=eE(o,n,a);return t.addTensorList(i),[i.idTensor]}case"TensorListGather":{let o=k("tensorListId",r,e,t),n=k("indices",r,e,t),s=k("elementShape",r,e,t),a=k("elementDType",r,e,t);return[t.getTensorList(o.id).gather(n,a,s)]}cas
${e}`);let n;return this.size===Infinity||this.size==null?n=this.size:t?n=Math.ceil(this.size/e):n=Math.floor(this.size/e),po(async()=>(await o.iterator()).columnMajorBatch(e,t,u5),n)}concatenate(e){let t=this,o;return this.size===Infinity||e.size===Infinity?o=Infinity:this.size!=null&&e.size!=null?o=this.size+e.size:o=null,po(async()=>(await t.iterator()).concatenate(await e.iterator()),o)}filter(e){let t=this,o;return this.size===Infinity?o=Infinity:o=null,po(async()=>(await t.iterator()).filter(n=>V(()=>e(n))),o)}async forEachAsync(e){return(await this.iterator()).forEachAsync(e)}map(e){let t=this;return po(async()=>(await t.iterator()).map(o=>V(()=>e(o))),this.size)}mapAsync(e){let t=this;return po(async()=>(await t.iterator()).mapAsync(e),this.size)}prefetch(e){if(e==null)throw new RangeError("`Dataset.prefetch()` requires bufferSize to be specified.");let t=this;return po(async()=>(await t.iterator()).prefetch(e),this.size)}repeat(e){let t=this,o;return this.size!=null&&e>0?o=this.size*e:e===0?o=0:this.size!=null&&(e===void 0||e<0)?o=Infinity:o=null,po(async()=>{let n=$d(async()=>({value:await t.iterator(),done:!1}));return EE(n.take(e))},o)}skip(e){let t=this,o;return this.size!=null&&e>=0&&this.size>=e?o=this.size-e:this.size!=null&&(this.size<e||e===void 0||e<0)?o=0:o=null,po(async()=>(await t.iterator()).skip(e),o)}shuffle(e,t,o=!0){if(e==null||e<0)throw this.size==null?new RangeError("`Dataset.shuffle()` requires bufferSize to be specified."):new RangeError(`\`Dataset.shuffle()\` requires bufferSize to be specified. If your data fits in main memory (for regular JS objects), and/or GPU memory (for \`tf.Tensor\`s), consider setting bufferSize to the dataset size (${this.size} elements)`);let n=this,s=VE.alea(t||y.now().toString());return po(async()=>{let a=s.int32();return o&&(a+=s.int32()),(await n.iterator()).shuffle(e,a.toString())},this.size)}take(e){let t=this,o;return this.size!=null&&this.size>e?o=e:this.size!=null&&this.size<=e?o=this.size:o=null,po(async()=>(await t.iterator()).take(e),o)}async toArray(){if(this.size===Infinity)throw new Error("Can not convert infinite data stream to array.");return(await this.iterator()).toArray()}async toArrayForTest(){if(this.size===Infinity)throw new Error("Can not convert infinite data stream to array.");return(await this.iterator()).toArrayForTest()}};Hi.MAX_BUFFER_SIZE=1e4;function po(r,e=null){return new class extends Hi{constructor(){super(...arguments);this.size=e}async iterator(){return r()}}}function WE(r){return po(async()=>Bv(r),r.length)}function GE(r){if(!Cl(r))throw new Error("The argument to zip() must be an object or array.");let e;if(Array.isArray(r))for(let t=0;t<r.length;t++)e=e==null?r[t].size:Math.min(e,r[t].size);else if(r instanceof Object)for(let t in r)e=e==null?r[t].size:Math.min(e,r[t].size);return po(async()=>{let t=await dx(r,o=>{if(o instanceof Hi)return{value:o.iterator(),recurse:!1};if(Cl(o))return{value:null,recurse:!0};throw new Error("Leaves of the structure passed to zip() must be Datasets, not primitives.")});return DE(t,Ga.SHORTEST)},e)}function u5(r){if(r===null)return null;let e=r[0];return CE(e)?{value:c5(r),recurse:!1}:{value:null,recurse:!0}}function c5(r){if(r.length===0)throw new Error("Can't make a batch of zero elements.");return r[0]instanceof R?Wt(r):Fr(r)}var Rd=class extends Hi{constructor(e){super();this.input=e}async iterator(){return(await this.input.iterator()).decodeUTF8().split(`
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============================
Hi there \u{1F44B}. Looks like you are running TensorFlow.js in Node.js. To speed things up dramatically, install our node backend, which binds to TensorFlow C++, by running npm i @tensorflow/tfjs-node, or npm i @tensorflow/tfjs-node-gpu if you have CUDA. Then call require('@tensorflow/tfjs-node'); (-gpu suffix for CUDA) at the start of your program. Visit https://github.com/tensorflow/tfjs-node for more details.
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============================`));let n={};return this.data.set(n,{values:e,dtype:o,refCount:1}),n}makeTensorInfo(e,t,o){let n;if(t==="string"&&o!=null&&o.length>0&&y.isString(o[0])){let s=o.map(a=>y.encodeString(a));n=this.write(s,e,t)}else n=this.write(o,e,t);return{dataId:n,shape:e,dtype:t}}incRef(e){let t=this.data.get(e);t.refCount++}decRef(e){if(this.data.has(e)){let t=this.data.get(e);t.refCount--}}move(e,t,o,n){this.data.set(e,{values:t,dtype:n,refCount:1})}numDataIds(){return this.data.numDataIds()}async read(e){return this.readSync(e)}readSync(e){let{dtype:t,complexTensorInfos:o}=this.data.get(e);if(t==="complex64"){let n=this.readSync(o.real.dataId),s=this.readSync(o.imag.dataId);return S.mergeRealAndImagArrays(n,s)}return this.data.get(e).values}bufferSync(e){let t=this.readSync(e.dataId),o=t;if(e.dtype==="string")try{o=t.map(n=>y.decodeString(n))}catch(n){throw new Error("Failed to decode encoded string bytes into utf-8")}return Ie(e.shape,e.dtype,o)}makeOutput(e,t,o){let n=this.write(e,t,o);return Ns().makeTensorFromDataId(n,t,o,this)}disposeData(e){if(this.data.has(e)){let{complexTensorInfos:t}=this.data.get(e);t!=null&&(this.disposeData(t.real.dataId),this.disposeData(t.imag.dataId)),this.data.delete(e)}}disposeIntermediateTensorInfo(e){let t=e.dataId;if(this.data.has(t)){let o=this.data.get(t);o.refCount--,o.refCount<1&&this.disposeData(t)}}async time(e){let t=y.now();return e(),{kernelMs:y.now()-t}}memory(){return{unreliable:!0,reasons:["The reported memory is an upper bound. Due to automatic garbage collection, the true allocated memory may be less."]}}where(e){te([e],"where");let t=this.readSync(e.dataId);return m5(e.shape,t)}dispose(){}floatPrecision(){return 32}epsilon(){return super.epsilon()}};var ok={};tt(ok,{addImpl:()=>uA,bincountImpl:()=>Wd,bincountReduceImpl:()=>Kv,ceilImpl:()=>pA,concatImpl:()=>Gd,expImpl:()=>fA,expm1Impl:()=>hA,floorImpl:()=>xA,gatherV2Impl:()=>Yv,greaterImpl:()=>bA,lessImpl:()=>wA,linSpaceImpl:()=>Zv,logImpl:()=>kA,maxImpl:()=>Jv,maximumImpl:()=>IA,minimumImpl:()=>SA,multiplyImpl:()=>_x,negImpl:()=>AA,notEqualImpl:()=>$A,prodImpl:()=>OA,rangeImpl:()=>qd,rsqrtImpl:()=>MA,simpleAbsImpl:()=>oA,sliceImpl:()=>Hd,squaredDifferenceImpl:()=>BA,stridedSliceImpl:()=>Qv,subImpl:()=>WA,tileImpl:()=>ek,topKImpl:()=>tk,transposeImpl:()=>jd,uniqueImpl:()=>rk});function oA(r){let e=new Float32Array(r.length);for(let t=0;t<r.length;++t)e[t]=Math.abs(r[t]);return e}var f5=r=>{let{x:e}=r.inputs,t=r.backend;te(e,"abs");let o=new Float32Array(y.sizeFromShape(e.shape)),n=t.data.get(e.dataId).values;return o=oA(n),t.makeOutput(o,e.shape,"float32")},nA={kernelName:ls,backendName:"cpu",kernelFunc:f5};function Ze(r){return(e,t,o,n,s)=>{let a=S.assertAndGetBroadcastShape(e,t),i=a.length,l=y.computeStrides(a),u=y.sizeFromShape(a),c=y.getTypedArrayFromDType(s,u),p=e.length,m=t.length,f=y.computeStrides(e),d=y.computeStrides(t),h=S.getBroadcastDims(e,a),g=S.getBroadcastDims(t,a);if(h.length+g.length===0)for(let x=0;x<c.length;++x)c[x]=r(o[x%o.length],n[x%n.length]);else for(let x=0;x<c.length;++x){let b=y.indexToLoc(x,i,l),_=b.slice(-p);h.forEach(A=>_[A]=0);let w=y.locToIndex(_,p,f),C=b.slice(-m);g.forEach(A=>C[A]=0);let D=y.locToIndex(C,m,d);c[x]=r(o[w],n[D])}return[c,a]}}function pr(r){let{inputs:e,backend:t}=r,{real:o,imag:n}=e,s=t.data.get(o.dataId).values,a=t.data.get(n.dataId).values,i=t.makeTensorInfo(o.shape,"complex64"),l=t.data.get(i.dataId);return l.complexTensorInfos={real:t.makeTensorInfo(o.shape,"float32",s),imag:t.makeTensorInfo(n.shape,"float32",a)},i}var sA={kernelName:Kl,backendName:"cpu",kernelFunc:pr};function Fp(r,e,t="float32"){if(t==="complex64"){let n=Fp(r,e,"float32"),s=Fp(r,e,"float32");return pr({inputs:{real:n,imag:s},backend:r})}let o=y.makeZerosTypedArray(y.sizeFromShape(e),t);return r.makeTensorInfo(e,t,o)}function Dr(r){let{inputs:e,backend:t}=r,{x:o}=e;return t.incRef(o.dataId),{dataId:o.dataId,shape:o.shape,dtype:o.dtype}}var iA={kernelName:ms,backendName:"cpu",kernelFunc:Dr};function Zn(r){let{inputs:e,backend:t}=r,{input:o}=e,n=t.data.get(o.dataId).complexTensorInfos.
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`)),console.log(e.split(`
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`)[0]),console.log(`%c ${y.rightPad(u[0],i)}`,"border:1px solid red; background-color:#e3d2d2; color:#a61717"),console.log(c.join(`
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bool isnan_custom(float val) {
return (val > 0.0 || val < 0.0) ? false : val != 0.0;
}
bvec4 isnan_custom(vec4 val) {
return bvec4(isnan_custom(val.x),
isnan_custom(val.y), isnan_custom(val.z), isnan_custom(val.w));
}
#define isnan(value) isnan_custom(value)
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`,l="",u=`
#define round(value) newRound(value)
int newRound(float value) {
return int(floor(value + 0.5));
}
ivec4 newRound(vec4 value) {
return ivec4(floor(value + vec4(0.5)));
}
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`):(r="",e="attribute",t="varying",o="varying",n="texture2D",s="gl_FragColor",a="",i=`
#define isnan(value) isnan_custom(value)
bool isnan_custom(float val) {
return (val > 0. || val < 1. || val == 0.) ? false : true;
}
bvec4 isnan_custom(vec4 val) {
return bvec4(isnan(val.x), isnan(val.y), isnan(val.z), isnan(val.w));
}
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`,l=`
uniform float INFINITY;
bool isinf(float val) {
return abs(val) == INFINITY;
}
bvec4 isinf(vec4 val) {
return equal(abs(val), vec4(INFINITY));
}
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`,u=`
int round(float value) {
return int(floor(value + 0.5));
}
ivec4 round(vec4 value) {
return ivec4(floor(value + vec4(0.5)));
}
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`),{version:r,attribute:e,varyingVs:t,varyingFs:o,texture2D:n,output:s,defineOutput:a,defineSpecialNaN:i,defineSpecialInf:l,defineRound:u}}function Bs(r,e,t="index"){let o=y.computeStrides(e);return o.map((n,s)=>{let a=`int ${r[s]} = ${t} / ${n}`,i=s===o.length-1?`int ${r[s+1]} = ${t} - ${r[s]} * ${n}`:`index -= ${r[s]} * ${n}`;return`${a}; ${i};`}).join("")}function zp(r){let e=y.computeStrides(r).map(t=>t.toString());return`
int getFlatIndex(ivec3 coords) {
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return coords.x * ${e[0]} + coords.y * ${e[1]} + coords.z;
}
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`}var Ax=`
const float FLOAT_MAX = 1.70141184e38;
const float FLOAT_MIN = 1.17549435e-38;
lowp vec4 encode_float(highp float v) {
if (isnan(v)) {
return vec4(255, 255, 255, 255);
}
highp float av = abs(v);
if(av < FLOAT_MIN) {
return vec4(0.0, 0.0, 0.0, 0.0);
} else if(v > FLOAT_MAX) {
return vec4(0.0, 0.0, 128.0, 127.0) / 255.0;
} else if(v < -FLOAT_MAX) {
return vec4(0.0, 0.0, 128.0, 255.0) / 255.0;
}
highp vec4 c = vec4(0,0,0,0);
highp float e = floor(log2(av));
highp float m = exp2(fract(log2(av))) - 1.0;
c[2] = floor(128.0 * m);
m -= c[2] / 128.0;
c[1] = floor(32768.0 * m);
m -= c[1] / 32768.0;
c[0] = floor(8388608.0 * m);
highp float ebias = e + 127.0;
c[3] = floor(ebias / 2.0);
ebias -= c[3] * 2.0;
c[2] += floor(ebias) * 128.0;
c[3] += 128.0 * step(0.0, -v);
return c / 255.0;
}
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`;var Ck=class{constructor(e){this.variableNames=["A"],this.packedInputs=!1,this.packedOutput=!0,this.outPackingScheme=Nl.DENSE;let t=Sl(e),o=zt();this.outputShape=e,this.userCode=`
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ivec3 outCoordsFromFlatIndex(int index) {
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${Bs(["r","c","d"],e)}
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return ivec3(r, c, d);
}
void main() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
int index = 4 * (resTexRC.x * ${t[1]} + resTexRC.y);
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vec4 result = vec4(0.);
for (int i=0; i<4; i++) {
int flatIndex = index + i;
ivec3 rc = outCoordsFromFlatIndex(flatIndex);
result[i] = getA(rc.x, rc.y, rc.z);
}
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${o.output} = result;
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}
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`}};var Ik=class{constructor(e){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outPackingScheme=Nl.DENSE;let t=Sl(e),o=zt();this.outputShape=e,this.userCode=`
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ivec3 outCoordsFromFlatIndex(int index) {
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${Bs(["r","c","d"],e)}
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return ivec3(r, c, d);
}
void main() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
int index = 4 * (resTexRC.x * ${t[1]} + resTexRC.y);
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vec4 result = vec4(0.);
for (int i=0; i<4; i++) {
int flatIndex = index + i;
ivec3 rc = outCoordsFromFlatIndex(flatIndex);
result[i] = getChannel(getA(rc.x, rc.y, rc.z), vec2(rc.y, rc.z));
}
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${o.output} = result;
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}
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`}};var Nk=class{constructor(e){this.variableNames=["A"],this.outTexUsage=$r.DOWNLOAD;let t=zt();this.outputShape=e,this.userCode=`
${Ax}
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void main() {
float x = getAAtOutCoords();
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${t.output} = encode_float(x);
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}
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`}};var Sk=class{constructor(e){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!1,this.outTexUsage=$r.DOWNLOAD;let t=zt();this.outputShape=e,this.userCode=`
${Ax}
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void main() {
ivec3 coords = getOutputCoords();
float x = getChannel(getAAtOutCoords(), vec2(coords.y, coords.z));
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${t.output} = encode_float(x);
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}
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`}};var Tk=class{constructor(e,t,o=!1){this.variableNames=["A"];let n=zt(),[s,a]=t;this.outputShape=e;let i="result";o&&(i="floor(result * 255. + 0.5)"),this.userCode=`
${zp(e)}
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void main() {
ivec3 coords = getOutputCoords();
int flatIndex = getFlatIndex(coords);
int offset = imod(flatIndex, 4);
flatIndex = idiv(flatIndex, 4, 1.);
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int r = flatIndex / ${a};
int c = imod(flatIndex, ${a});
vec2 uv = (vec2(c, r) + halfCR) / vec2(${a}.0, ${s}.0);
vec4 values = ${n.texture2D}(A, uv);
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float result;
if(offset == 0) {
result = values[0];
} else if(offset == 1) {
result = values[1];
} else if(offset == 2) {
result = values[2];
} else {
result = values[3];
}
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${n.output} = vec4(${i}, 0., 0., 0.);
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}
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`}};var Ek=class{constructor(e,t,o=!1){this.variableNames=["A"],this.packedInputs=!1,this.packedOutput=!0;let n=zt(),[s,a]=t;this.outputShape=e;let i="",l="result";o&&(l="floor(result * 255. + 0.5)");for(let u=0;u<=1;u++)for(let c=0;c<=1;c++){let p=u*2+c;i+=`
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localCoords = coords;
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if(localCoords[2] + ${c} < ${e[2]}) {
localCoords[2] += ${c};
if(localCoords[1] + ${u} < ${e[1]}) {
localCoords[1] += ${u};
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flatIndex = getFlatIndex(localCoords);
offset = imod(flatIndex, 4);
flatIndex = idiv(flatIndex, 4, 1.);
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r = flatIndex / ${a};
c = imod(flatIndex, ${a});
uv = (vec2(c, r) + halfCR) / vec2(${a}.0, ${s}.0);
values = ${n.texture2D}(A, uv);
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if(offset == 0) {
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result[${p}] = values[0];
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} else if(offset == 1) {
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result[${p}] = values[1];
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} else if(offset == 2) {
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result[${p}] = values[2];
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} else {
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result[${p}] = values[3];
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}
}
}
`}this.userCode=`
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${zp(e)}
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void main() {
ivec3 coords = getOutputCoords();
vec4 result = vec4(0.);
int flatIndex, r, c, offset;
ivec3 localCoords;
vec2 uv;
vec4 values;
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${i}
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${n.output} = ${l};
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}
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`}};function L$(r){let e=zt(),t=`${e.version}
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precision highp float;
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${e.attribute} vec3 clipSpacePos;
${e.attribute} vec2 uv;
${e.varyingVs} vec2 resultUV;
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void main() {
gl_Position = vec4(clipSpacePos, 1);
resultUV = uv;
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}`;return b$(r,t)}function z$(r){let e=new Float32Array([-1,1,0,0,1,-1,-1,0,0,0,1,1,0,1,1,1,-1,0,1,0]);return k$(r,e)}function B$(r){let e=new Uint16Array([0,1,2,2,1,3]);return C$(r,e)}function rh(r,e,t,o,n,s){N$(e,t);let a=I$(r),i=r.TEXTURE_2D;return De(r,()=>r.bindTexture(i,a)),De(r,()=>r.texParameteri(i,r.TEXTURE_WRAP_S,r.CLAMP_TO_EDGE)),De(r,()=>r.texParameteri(i,r.TEXTURE_WRAP_T,r.CLAMP_TO_EDGE)),De(r,()=>r.texParameteri(i,r.TEXTURE_MIN_FILTER,r.NEAREST)),De(r,()=>r.texParameteri(i,r.TEXTURE_MAG_FILTER,r.NEAREST)),De(r,()=>r.texImage2D(i,0,o,e,t,0,n,s,null)),De(r,()=>r.bindTexture(r.TEXTURE_2D,null)),a}function Ak(r){return r.internalFormatFloat}function V$(r,e,t,o){let[n,s]=ac(e,t);return rh(r,n,s,Ak(o),o.textureFormatFloat,r.FLOAT)}function Dk(r){return r.internalFormatHalfFloat}function W$(r,e,t,o){let[n,s]=ac(e,t);return rh(r,n,s,Dk(o),o.textureFormatFloat,o.textureTypeHalfFloat)}function $k(r){return r.downloadTextureFormat}function G$(r,e,t,o){let[n,s]=ac(e,t);return rh(r,n,s,$k(o),r.RGBA,r.UNSIGNED_BYTE)}function Rk(r){return r.internalFormatPackedFloat}function U$(r,e,t,o){let[n,s]=Xi(e,t);return rh(r,n,s,Rk(o),r.RGBA,r.FLOAT)}function Fk(r){return r.internalFormatPackedHalfFloat}function j$(r,e,t,o){let[n,s]=Xi(e,t);return rh(r,n,s,Fk(o),r.RGBA,o.textureTypeHalfFloat)}function q$(r,e,t){let o=0,n=3*4,s=3*4+2*4;return De(r,()=>r.bindBuffer(r.ARRAY_BUFFER,t)),yk(r,e,"clipSpacePos",t,3,s,o)&&yk(r,e,"uv",t,2,s,n)}function H$(r,e,t,o,n,s){De(r,()=>r.bindTexture(r.TEXTURE_2D,e));let a,i,l;n instanceof Uint8Array?(a=new Uint8Array(t*o*4),i=r.UNSIGNED_BYTE,l=r.RGBA):(a=new Float32Array(t*o*4),i=r.FLOAT,l=s.internalFormatPackedFloat),a.set(n),De(r,()=>r.texImage2D(r.TEXTURE_2D,0,l,t,o,0,r.RGBA,i,a)),De(r,()=>r.bindTexture(r.TEXTURE_2D,null))}function K$(r,e,t){De(r,()=>r.bindTexture(r.TEXTURE_2D,e)),t.data instanceof Uint8Array?De(r,()=>r.texImage2D(r.TEXTURE_2D,0,r.RGBA,t.width,t.height,0,r.RGBA,r.UNSIGNED_BYTE,t.data)):De(r,()=>r.texImage2D(r.TEXTURE_2D,0,r.RGBA,r.RGBA,r.UNSIGNED_BYTE,t)),De(r,()=>r.bindTexture(r.TEXTURE_2D,null))}function X$(r,e,t,o){let n=r.createBuffer();De(r,()=>r.bindBuffer(r.PIXEL_PACK_BUFFER,n));let i=4*4*e*t;return De(r,()=>r.bufferData(r.PIXEL_PACK_BUFFER,i,r.STREAM_READ)),De(r,()=>r.readPixels(0,0,t,e,r.RGBA,r.FLOAT,0)),De(r,()=>r.bindBuffer(r.PIXEL_PACK_BUFFER,null)),n}function Y$(r,e,t){let o=r,n=new Float32Array(t);return o.bindBuffer(o.PIXEL_PACK_BUFFER,e),o.getBufferSubData(o.PIXEL_PACK_BUFFER,0,n),o.bindBuffer(o.PIXEL_PACK_BUFFER,null),n}function Z$(r,e,t,o){let[n,s]=ac(e,t),a=4,i=new Uint8Array(g$(e*t,a));return De(r,()=>r.readPixels(0,0,n,s,o.downloadTextureFormat,r.UNSIGNED_BYTE,i)),new Float32Array(i.buffer)}function J$(r,e,t,o,n,s,a,i){let l=r,u=new Float32Array(x$(s,a));return l.bindBuffer(l.PIXEL_PACK_BUFFER,e),l.getBufferSubData(l.PIXEL_PACK_BUFFER,0,u),l.bindBuffer(l.PIXEL_PACK_BUFFER,null),u}function Q$(r,e,t){let o=new Float32Array(e*t*4);return De(r,()=>r.readPixels(0,0,t,e,r.RGBA,r.FLOAT,o)),o}var Ok=class{constructor(e){this.outputTexture=null,this.program=null,this.disposed=!1,this.vertexAttrsAreBound=!1,this.itemsToPoll=[];let t=W().getNumber("WEBGL_VERSION");e!=null?(this.gl=e,h$(t,e)):this.gl=Wo(t);let o="WEBGL_color_buffer_float",n="EXT_color_buffer_half_float";if(W().getNumber("WEBGL_VERSION")===1){let s="OES_texture_float",a="OES_texture_half_float";if(this.textureFloatExtension=eh(this.gl,s),Go(this.gl,a))this.textureHalfFloatExtension=eh(this.gl,a);else if(W().get("WEBGL_FORCE_F16_TEXTURES"))throw new Error("GL context does not support half float textures, yet the environment flag WEBGL_FORCE_F16_TEXTURES is set to true.");if(this.colorBufferFloatExtension=this.gl.getExtension(o),Go(this.gl,n))this.colorBufferHalfFloatExtension=eh(this.gl,n);else if(W().get("WEBGL_FORCE_F16_TEXTURES"))throw new Error("GL context does not support color renderable half floats, yet the environment flag WEBGL_FORCE_F16_TEXTURES is set to true.")}else if(o="EXT_color_buffer_float",Go(this.gl,o))this.colorBufferFloatExtension=this.gl.getExtension(o);else if(Go(this.gl,n))this.
`),a=r.map(d=>cY(d,e,o)).join(`
`),i=e.texShape,l=zt(),u=fY(l),c,p,m=gY(l);return e.isPacked?(c=pY(e.logicalShape,i),p=hY(l)):(c=mY(e.logicalShape,i),p=dY(l)),o&&(m+=xY),[m,u,p,s,c,a,t].join(`
`)}function Bp(r){let e=r.shapeInfo.logicalShape;switch(e.length){case 0:return yY(r);case 1:return bY(r);case 2:return _Y(r);case 3:return wY(r);case 4:return vY(r);case 5:return kY(r);case 6:return CY(r);default:throw new Error(`${e.length}-D input sampling is not yet supported`)}}function rR(r){switch(r.shapeInfo.logicalShape.length){case 0:return IY(r);case 1:return NY(r);case 2:return SY(r);case 3:return TY(r);default:return EY(r)}}function cY(r,e,t=!1){let o="";t?o+=rR(r):o+=Bp(r);let n=r.shapeInfo.logicalShape,s=e.logicalShape;return n.length<=s.length&&(t?o+=AY(r,e):o+=DY(r,e)),o}function pY(r,e){switch(r.length){case 0:return oR();case 1:return $Y(r,e);case 2:return OY(r,e);case 3:return RY(r,e);default:return FY(r,e)}}function mY(r,e){switch(r.length){case 0:return oR();case 1:return PY(r,e);case 2:return VY(r,e);case 3:return MY(r,e);case 4:return LY(r,e);case 5:return zY(r,e);case 6:return BY(r,e);default:throw new Error(`${r.length}-D output sampling is not yet supported`)}}function fY(r){return`
float sampleTexture(sampler2D textureSampler, vec2 uv) {
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return ${r.texture2D}(textureSampler, uv).r;
}
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`}function dY(r){return`
void setOutput(float val) {
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${r.output} = vec4(val, 0, 0, 0);
}
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`}function hY(r){return`
void setOutput(vec4 val) {
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${r.output} = val;
}
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`}function gY(r){return`${r.version}
precision highp float;
precision highp int;
precision highp sampler2D;
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${r.varyingFs} vec2 resultUV;
${r.defineOutput}
const vec2 halfCR = vec2(0.5, 0.5);
struct ivec5
{
int x;
int y;
int z;
int w;
int u;
};
struct ivec6
{
int x;
int y;
int z;
int w;
int u;
int v;
};
uniform float NAN;
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${r.defineSpecialNaN}
${r.defineSpecialInf}
${r.defineRound}
int imod(int x, int y) {
return x - y * (x / y);
}
int idiv(int a, int b, float sign) {
int res = a / b;
int mod = imod(a, b);
if (sign < 0. && mod != 0) {
res -= 1;
}
return res;
}
//Based on the work of Dave Hoskins
//https://www.shadertoy.com/view/4djSRW
#define HASHSCALE1 443.8975
float random(float seed){
vec2 p = resultUV * seed;
vec3 p3 = fract(vec3(p.xyx) * HASHSCALE1);
p3 += dot(p3, p3.yzx + 19.19);
return fract((p3.x + p3.y) * p3.z);
}
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${WY}
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${GY}
${UY}
`}var WY=`
vec2 uvFromFlat(int texNumR, int texNumC, int index) {
int texR = index / texNumC;
int texC = index - texR * texNumC;
return (vec2(texC, texR) + halfCR) / vec2(texNumC, texNumR);
}
vec2 packedUVfrom1D(int texNumR, int texNumC, int index) {
int texelIndex = index / 2;
int texR = texelIndex / texNumC;
int texC = texelIndex - texR * texNumC;
return (vec2(texC, texR) + halfCR) / vec2(texNumC, texNumR);
}
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`,GY=`
vec2 packedUVfrom2D(int texelsInLogicalRow, int texNumR,
int texNumC, int row, int col) {
int texelIndex = (row / 2) * texelsInLogicalRow + (col / 2);
int texR = texelIndex / texNumC;
int texC = texelIndex - texR * texNumC;
return (vec2(texC, texR) + halfCR) / vec2(texNumC, texNumR);
}
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`,UY=`
vec2 packedUVfrom3D(int texNumR, int texNumC,
int texelsInBatch, int texelsInLogicalRow, int b,
int row, int col) {
int index = b * texelsInBatch + (row / 2) * texelsInLogicalRow + (col / 2);
int texR = index / texNumC;
int texC = index - texR * texNumC;
return (vec2(texC, texR) + halfCR) / vec2(texNumC, texNumR);
}
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`,xY=`
float getChannel(vec4 frag, vec2 innerDims) {
vec2 modCoord = mod(innerDims, 2.);
return modCoord.x == 0. ?
(modCoord.y == 0. ? frag.r : frag.g) :
(modCoord.y == 0. ? frag.b : frag.a);
}
float getChannel(vec4 frag, int dim) {
float modCoord = mod(float(dim), 2.);
return modCoord == 0. ? frag.r : frag.g;
}
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`;function oR(){return`
int getOutputCoords() {
return 0;
}
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`}function $Y(r,e){let t=[Math.ceil(e[0]/2),Math.ceil(e[1]/2)];return t[0]===1?`
int getOutputCoords() {
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return 2 * int(resultUV.x * ${t[1]}.0);
}
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`:t[1]===1?`
int getOutputCoords() {
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return 2 * int(resultUV.y * ${t[0]}.0);
}
`:`
int getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
return 2 * (resTexRC.x * ${t[1]} + resTexRC.y);
}
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`}function PY(r,e){return e[0]===1?`
int getOutputCoords() {
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return int(resultUV.x * ${e[1]}.0);
}
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`:e[1]===1?`
int getOutputCoords() {
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return int(resultUV.y * ${e[0]}.0);
}
`:`
int getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
return resTexRC.x * ${e[1]} + resTexRC.y;
}
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`}function RY(r,e){let t=[Math.ceil(e[0]/2),Math.ceil(e[1]/2)],o=Math.ceil(r[2]/2),n=o*Math.ceil(r[1]/2);return`
ivec3 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
int index = resTexRC.x * ${t[1]} + resTexRC.y;
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int b = index / ${n};
index -= b * ${n};
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int r = 2 * (index / ${o});
int c = imod(index, ${o}) * 2;
return ivec3(b, r, c);
}
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`}function MY(r,e){let t=Bs(["r","c","d"],r);return`
ivec3 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
${t}
return ivec3(r, c, d);
}
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`}function FY(r,e){let t=[Math.ceil(e[0]/2),Math.ceil(e[1]/2)],o=Math.ceil(r[r.length-1]/2),n=o*Math.ceil(r[r.length-2]/2),s=n,a="",i="b, r, c";for(let l=2;l<r.length-1;l++)s*=r[r.length-l-1],a=`
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int b${l} = index / ${s};
index -= b${l} * ${s};
`+a,i=`b${l}, `+i;return`
ivec${r.length} getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
int index = resTexRC.x * ${t[1]} + resTexRC.y;
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${a}
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int b = index / ${n};
index -= b * ${n};
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int r = 2 * (index / ${o});
int c = imod(index, ${o}) * 2;
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return ivec${r.length}(${i});
}
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`}function LY(r,e){let t=Bs(["r","c","d","d2"],r);return`
ivec4 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
${t}
return ivec4(r, c, d, d2);
}
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`}function zY(r,e){let t=Bs(["r","c","d","d2","d3"],r);return`
ivec5 getOutputCoords() {
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ivec2 resTexRC = ivec2(resultUV.yx * vec2(${e[0]},
${e[1]}));
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int index = resTexRC.x * ${e[1]} + resTexRC.y;
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${t}
ivec5 outShape = ivec5(r, c, d, d2, d3);
return outShape;
}
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`}function BY(r,e){let t=Bs(["r","c","d","d2","d3","d4"],r);return`
ivec6 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
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${t}
ivec6 result = ivec6(r, c, d, d2, d3, d4);
return result;
}
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`}function OY(r,e){let t=[Math.ceil(e[0]/2),Math.ceil(e[1]/2)];if(y.arraysEqual(r,e))return`
ivec2 getOutputCoords() {
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return 2 * ivec2(resultUV.yx * vec2(${t[0]}, ${t[1]}));
}
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`;let o=Math.ceil(r[1]/2);return`
ivec2 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${t[0]}, ${t[1]}));
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int index = resTexRC.x * ${t[1]} + resTexRC.y;
int r = 2 * (index / ${o});
int c = imod(index, ${o}) * 2;
return ivec2(r, c);
}
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`}function VY(r,e){return y.arraysEqual(r,e)?`
ivec2 getOutputCoords() {
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return ivec2(resultUV.yx * vec2(${e[0]}, ${e[1]}));
}
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`:r[1]===1?`
ivec2 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
return ivec2(index, 0);
}
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`:r[0]===1?`
ivec2 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
return ivec2(0, index);
}
`:`
ivec2 getOutputCoords() {
ivec2 resTexRC = ivec2(resultUV.yx *
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vec2(${e[0]}, ${e[1]}));
int index = resTexRC.x * ${e[1]} + resTexRC.y;
int r = index / ${r[1]};
int c = index - r * ${r[1]};
return ivec2(r, c);
}
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`}function uc(r){return`offset${r}`}function IY(r){let e=r.name,t="get"+e.charAt(0).toUpperCase()+e.slice(1),o=zt();return`
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vec4 ${t}() {
return ${o.texture2D}(${e}, halfCR);
}
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`}function yY(r){let e=r.name,t="get"+e.charAt(0).toUpperCase()+e.slice(1);if(r.shapeInfo.isUniform)return`float ${t}() {return ${e};}`;let[o,n]=r.shapeInfo.texShape;if(o===1&&n===1)return`
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float ${t}() {
return sampleTexture(${e}, halfCR);
}
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`;let[s,a]=r.shapeInfo.texShape,i=uc(e);return`
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float ${t}() {
vec2 uv = uvFromFlat(${s}, ${a}, ${i});
return sampleTexture(${e}, uv);
}
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`}function NY(r){let e=r.name,t="get"+e.charAt(0).toUpperCase()+e.slice(1),o=r.shapeInfo.texShape,n=[Math.ceil(o[0]/2),Math.ceil(o[1]/2)],s=zt();return`
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vec4 ${t}(int index) {
vec2 uv = packedUVfrom1D(
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${n[0]}, ${n[1]}, index);
return ${s.texture2D}(${e}, uv);
}
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`}function bY(r){let e=r.name,t="get"+e.charAt(0).toUpperCase()+e.slice(1);if(r.shapeInfo.isUniform)return`
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float ${t}(int index) {
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${Vp(r)}
}
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`;let o=r.shapeInfo.texShape,n=o[0],s=o[1];if(s===1&&n===1)return`
float ${t}(int index) {
return sampleTexture(${e}, halfCR);
}
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`;let a=uc(e);return s===1?`
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float ${t}(int index) {
vec2 uv = vec2(0.5, (float(index + ${a}) + 0.5) / ${n}.0);
return sampleTexture(${e}, uv);
}
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`:n===1?`
float ${t}(int index) {
vec2 uv = vec2((float(index + ${a}) + 0.5) / ${s}.0, 0.5);
return sampleTexture(${e}, uv);
}
`:`
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float ${t}(int index) {
vec2 uv = uvFromFlat(${n}, ${s}, index + ${a});
return sampleTexture(${e}, uv);
}
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`}function SY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=r.shapeInfo.texShape,s=n[0],a=n[1],i=zt();if(n!=null&&y.arraysEqual(e,n))return`
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vec4 ${o}(int row, int col) {
vec2 uv = (vec2(col, row) + halfCR) / vec2(${a}.0, ${s}.0);
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return ${i.texture2D}(${t}, uv);
}
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`;let l=[Math.ceil(n[0]/2),Math.ceil(n[1]/2)],u=Math.ceil(e[1]/2);return`
vec4 ${o}(int row, int col) {
vec2 uv = packedUVfrom2D(${u}, ${l[0]}, ${l[1]}, row, col);
return ${i.texture2D}(${t}, uv);
}
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`}function _Y(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=r.shapeInfo.texShape;if(n!=null&&y.arraysEqual(e,n)){let p=n[0],m=n[1];return`
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float ${o}(int row, int col) {
vec2 uv = (vec2(col, row) + halfCR) / vec2(${m}.0, ${p}.0);
return sampleTexture(${t}, uv);
}
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`}let{newShape:s,keptDims:a}=y.squeezeShape(e),i=s;if(i.length<e.length){let p=Wp(r,i),m=["row","col"];return`
${Bp(p)}
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float ${o}(int row, int col) {
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return ${o}(${Gp(m,a)});
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}
`}if(r.shapeInfo.isUniform)return`
float ${o}(int row, int col) {
int index = round(dot(vec2(row, col), vec2(${e[1]}, 1)));
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${Vp(r)}
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}
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`;let l=n[0],u=n[1],c=uc(t);return u===1?`
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float ${o}(int row, int col) {
float index = dot(vec3(row, col, ${c}), vec3(${e[1]}, 1, 1));
vec2 uv = vec2(0.5, (index + 0.5) / ${l}.0);
return sampleTexture(${t}, uv);
}
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`:l===1?`
float ${o}(int row, int col) {
float index = dot(vec3(row, col, ${c}), vec3(${e[1]}, 1, 1));
vec2 uv = vec2((index + 0.5) / ${u}.0, 0.5);
return sampleTexture(${t}, uv);
}
`:`
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float ${o}(int row, int col) {
// Explicitly use integer operations as dot() only works on floats.
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int index = row * ${e[1]} + col + ${c};
vec2 uv = uvFromFlat(${l}, ${u}, index);
return sampleTexture(${t}, uv);
}
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`}function TY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=r.shapeInfo.texShape,s=[Math.ceil(n[0]/2),Math.ceil(n[1]/2)];if(e[0]===1){let p=e.slice(1),m=[1,2],f=Wp(r,p),d=["b","row","col"];return`
${rR(f)}
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vec4 ${o}(int b, int row, int col) {
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return ${o}(${Gp(d,m)});
}
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`}let a=s[0],i=s[1],l=Math.ceil(e[2]/2),u=l*Math.ceil(e[1]/2),c=zt();return`
vec4 ${o}(int b, int row, int col) {
vec2 uv = packedUVfrom3D(
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${a}, ${i}, ${u}, ${l}, b, row, col);
return ${c.texture2D}(${t}, uv);
}
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`}function wY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=e[1]*e[2],s=e[2],{newShape:a,keptDims:i}=y.squeezeShape(e),l=a;if(l.length<e.length){let d=Wp(r,l),h=["row","col","depth"];return`
${Bp(d)}
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float ${o}(int row, int col, int depth) {
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return ${o}(${Gp(h,i)});
}
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`}if(r.shapeInfo.isUniform)return`
float ${o}(int row, int col, int depth) {
int index = round(dot(vec3(row, col, depth),
2021-01-12 16:01:34 +01:00
vec3(${n}, ${s}, 1)));
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${Vp(r)}
}
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`;let u=r.shapeInfo.texShape,c=u[0],p=u[1],m=r.shapeInfo.flatOffset;if(p===n&&m==null)return`
float ${o}(int row, int col, int depth) {
float texR = float(row);
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float texC = dot(vec2(col, depth), vec2(${s}, 1));
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${p}.0, ${c}.0);
return sampleTexture(${t}, uv);
}
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`;if(p===s&&m==null)return`
float ${o}(int row, int col, int depth) {
float texR = dot(vec2(row, col), vec2(${e[1]}, 1));
float texC = float(depth);
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vec2 uv = (vec2(texC, texR) + halfCR) / vec2(${p}.0, ${c}.0);
return sampleTexture(${t}, uv);
}
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`;let f=uc(t);return`
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float ${o}(int row, int col, int depth) {
// Explicitly use integer operations as dot() only works on floats.
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int index = row * ${n} + col * ${s} + depth + ${f};
vec2 uv = uvFromFlat(${c}, ${p}, index);
return sampleTexture(${t}, uv);
}
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`}function EY(r){let e=r.shapeInfo.logicalShape,t=e.length,o=r.name,n="get"+o.charAt(0).toUpperCase()+o.slice(1),s=r.shapeInfo.texShape,a=[Math.ceil(s[0]/2),Math.ceil(s[1]/2)],i=a[0],l=a[1],u=Math.ceil(e[t-1]/2),c=u*Math.ceil(e[t-2]/2),p="int b, int row, int col",m=`b * ${c} + (row / 2) * ${u} + (col / 2)`;for(let d=2;d<t-1;d++)p=`int b${d}, `+p,c*=e[t-d-1],m=`b${d} * ${c} + `+m;let f=zt();return`
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vec4 ${n}(${p}) {
int index = ${m};
int texR = index / ${l};
int texC = index - texR * ${l};
vec2 uv = (vec2(texC, texR) + halfCR) / vec2(${l}, ${i});
return ${f.texture2D}(${o}, uv);
}
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`}function vY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=e[3],s=e[2]*n,a=e[1]*s,{newShape:i,keptDims:l}=y.squeezeShape(e);if(i.length<e.length){let d=Wp(r,i),h=["row","col","depth","depth2"];return`
${Bp(d)}
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float ${o}(int row, int col, int depth, int depth2) {
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return ${o}(${Gp(h,l)});
}
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`}if(r.shapeInfo.isUniform)return`
float ${o}(int row, int col, int depth, int depth2) {
int index = round(dot(vec4(row, col, depth, depth2),
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vec4(${a}, ${s}, ${n}, 1)));
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${Vp(r)}
}
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`;let u=r.shapeInfo.flatOffset,c=r.shapeInfo.texShape,p=c[0],m=c[1];if(m===a&&u==null)return`
float ${o}(int row, int col, int depth, int depth2) {
float texR = float(row);
float texC =
dot(vec3(col, depth, depth2),
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vec3(${s}, ${n}, 1));
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${m}.0, ${p}.0);
return sampleTexture(${t}, uv);
}
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`;if(m===n&&u==null)return`
float ${o}(int row, int col, int depth, int depth2) {
float texR = dot(vec3(row, col, depth),
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vec3(${e[1]*e[2]}, ${e[2]}, 1));
float texC = float(depth2);
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${m}.0, ${p}.0);
return sampleTexture(${t}, uv);
}
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`;let f=uc(t);return`
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float ${o}(int row, int col, int depth, int depth2) {
// Explicitly use integer operations as dot() only works on floats.
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int index = row * ${a} + col * ${s} +
depth * ${n} + depth2;
vec2 uv = uvFromFlat(${p}, ${m}, index + ${f});
return sampleTexture(${t}, uv);
}
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`}function kY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),n=e[4],s=e[3]*n,a=e[2]*s,i=e[1]*a,{newShape:l,keptDims:u}=y.squeezeShape(e);if(l.length<e.length){let h=Wp(r,l),g=["row","col","depth","depth2","depth3"];return`
${Bp(h)}
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float ${o}(int row, int col, int depth, int depth2, int depth3) {
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return ${o}(${Gp(g,u)});
}
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`}if(r.shapeInfo.isUniform)return`
float ${o}(int row, int col, int depth, int depth2, int depth3) {
float index = dot(
vec4(row, col, depth, depth2),
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vec4(${i}, ${a}, ${s}, ${n})) +
depth3;
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${Vp(r)}
}
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`;let c=r.shapeInfo.flatOffset,p=r.shapeInfo.texShape,m=p[0],f=p[1];if(f===i&&c==null)return`
float ${o}(int row, int col, int depth, int depth2, int depth3) {
int texR = row;
float texC = dot(vec4(col, depth, depth2, depth3),
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vec4(${a}, ${s}, ${n}, 1));
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${f}.0, ${m}.0);
return sampleTexture(${t}, uv);
}
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`;if(f===n&&c==null)return`
float ${o}(int row, int col, int depth, int depth2, int depth3) {
float texR = dot(
vec4(row, col, depth, depth2),
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vec4(${e[1]*e[2]*e[3]},
${e[2]*e[3]}, ${e[3]}, 1));
int texC = depth3;
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${f}.0, ${m}.0);
return sampleTexture(${t}, uv);
}
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`;let d=uc(t);return`
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float ${o}(int row, int col, int depth, int depth2, int depth3) {
// Explicitly use integer operations as dot() only works on floats.
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int index = row * ${i} + col * ${a} + depth * ${s} +
depth2 * ${n} + depth3 + ${d};
vec2 uv = uvFromFlat(${m}, ${f}, index);
return sampleTexture(${t}, uv);
}
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`}function CY(r){let e=r.shapeInfo.logicalShape,t=r.name,o="get"+t.charAt(0).toUpperCase()+t.slice(1),{newShape:n,keptDims:s}=y.squeezeShape(e);if(n.length<e.length){let g=Wp(r,n),x=["row","col","depth","depth2","depth3","depth4"];return`
${Bp(g)}
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float ${o}(int row, int col, int depth,
int depth2, int depth3, int depth4) {
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return ${o}(${Gp(x,s)});
}
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`}let a=e[5],i=e[4]*a,l=e[3]*i,u=e[2]*l,c=e[1]*u;if(r.shapeInfo.isUniform)return`
float ${o}(int row, int col, int depth,
int depth2, int depth3, int depth4) {
int index = round(dot(
vec4(row, col, depth, depth2),
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vec4(${c}, ${u}, ${l}, ${i})) +
dot(
vec2(depth3, depth4),
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vec2(${a}, 1)));
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${Vp(r)}
}
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`;let p=r.shapeInfo.flatOffset,m=r.shapeInfo.texShape,f=m[0],d=m[1];if(d===c&&p==null)return`
float ${o}(int row, int col, int depth,
int depth2, int depth3, int depth4) {
int texR = row;
float texC = dot(vec4(col, depth, depth2, depth3),
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vec4(${u}, ${l}, ${i}, ${a})) +
float(depth4);
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${d}.0, ${f}.0);
return sampleTexture(${t}, uv);
}
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`;if(d===a&&p==null)return`
float ${o}(int row, int col, int depth,
int depth2, int depth3, int depth4) {
float texR = dot(vec4(row, col, depth, depth2),
2021-01-12 16:01:34 +01:00
vec4(${e[1]*e[2]*e[3]*e[4]},
${e[2]*e[3]*e[4]},
${e[3]*e[4]},
${e[4]})) + float(depth3);
int texC = depth4;
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${d}.0, ${f}.0);
return sampleTexture(${t}, uv);
}
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`;let h=uc(t);return`
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float ${o}(int row, int col, int depth,
int depth2, int depth3, int depth4) {
// Explicitly use integer operations as dot() only works on floats.
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int index = row * ${c} + col * ${u} + depth * ${l} +
depth2 * ${i} + depth3 * ${a} + depth4 + ${h};
vec2 uv = uvFromFlat(${f}, ${d}, index);
return sampleTexture(${t}, uv);
}
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`}function Vp(r){let e=r.name,t=y.sizeFromShape(r.shapeInfo.logicalShape);return t<2?`return ${e};`:`
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for (int i = 0; i < ${t}; i++) {
if (i == index) {
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return ${e}[i];
}
}
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`}function AY(r,e){let t=r.name,o=t.charAt(0).toUpperCase()+t.slice(1),n="get"+o+"AtOutCoords",s=r.shapeInfo.logicalShape.length,a=e.logicalShape.length,i=eR(r.shapeInfo.logicalShape,e.logicalShape),l=ze(a),u=a-s,c,p=["x","y","z","w","u","v"];s===0?c="":a<2&&i.length>=1?c="coords = 0;":c=i.map(b=>`coords.${p[b+u]} = 0;`).join(`
`);let m="";a<2&&s>0?m="coords":m=r.shapeInfo.logicalShape.map((b,_)=>`coords.${p[_+u]}`).join(", ");let f="return outputValue;",h=y.sizeFromShape(r.shapeInfo.logicalShape)===1,x=y.sizeFromShape(e.logicalShape)===1;if(s===1&&!h&&!x)f=`
return vec4(outputValue.xy, outputValue.xy);
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`;else if(h&&!x)a===1?f=`
return vec4(outputValue.x, outputValue.x, 0., 0.);
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`:f=`
return vec4(outputValue.x);
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`;else if(i.length){let b=s-2,_=s-1;i.indexOf(b)>-1&&i.indexOf(_)>-1?f="return vec4(outputValue.x);":i.indexOf(b)>-1?f="return vec4(outputValue.x, outputValue.y, outputValue.x, outputValue.y);":i.indexOf(_)>-1&&(f="return vec4(outputValue.xx, outputValue.zz);")}return`
vec4 ${n}() {
${l} coords = getOutputCoords();
${c}
vec4 outputValue = get${o}(${m});
${f}
}
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`}function DY(r,e){let t=r.name,o=t.charAt(0).toUpperCase()+t.slice(1),n="get"+o+"AtOutCoords",s=e.texShape,a=r.shapeInfo.texShape,i=r.shapeInfo.logicalShape.length,l=e.logicalShape.length;if(!r.shapeInfo.isUniform&&i===l&&r.shapeInfo.flatOffset==null&&y.arraysEqual(a,s))return`
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float ${n}() {
return sampleTexture(${t}, resultUV);
}
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`;let u=ze(l),c=eR(r.shapeInfo.logicalShape,e.logicalShape),p=l-i,m,f=["x","y","z","w","u","v"];i===0?m="":l<2&&c.length>=1?m="coords = 0;":m=c.map(h=>`coords.${f[h+p]} = 0;`).join(`
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`);let d="";return l<2&&i>0?d="coords":d=r.shapeInfo.logicalShape.map((h,g)=>`coords.${f[g+p]}`).join(", "),`
float ${n}() {
${u} coords = getOutputCoords();
${m}
return get${o}(${d});
}
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`}function ze(r){if(r<=1)return"int";if(r===2)return"ivec2";if(r===3)return"ivec3";if(r===4)return"ivec4";if(r===5)return"ivec5";if(r===6)return"ivec6";throw Error(`GPU for rank ${r} is not yet supported`)}function Wp(r,e){let t=JSON.parse(JSON.stringify(r));return t.shapeInfo.logicalShape=e,t}function Gp(r,e){return e.map(t=>r[t]).join(", ")}function nR(r,e,t,o){let n=e.userCode,s=t.map((f,d)=>{let h={logicalShape:f.shape,texShape:f.isUniform?null:f.texData.texShape,isUniform:f.isUniform,isPacked:f.isUniform?!1:f.texData.isPacked,flatOffset:null};return f.texData!=null&&f.texData.slice!=null&&f.texData.slice.flatOffset>0&&(h.flatOffset=f.texData.slice.flatOffset),{name:e.variableNames[d],shapeInfo:h}}),a=s.map(f=>f.shapeInfo),i={logicalShape:o.shape,texShape:o.texData.texShape,isUniform:!1,isPacked:o.texData.isPacked,flatOffset:null},l=tR(s,i,n,e.packedInputs),u=r.createProgram(l),c=null,p=r.getUniformLocation(u,"NAN",!1);W().getNumber("WEBGL_VERSION")===1&&(c=r.getUniformLocation(u,"INFINITY",!1));let m={};for(let f=0;f<e.variableNames.length;f++){let d=e.variableNames[f],h=!1;m[d]=r.getUniformLocation(u,d,h),m[`offset${d}`]=r.getUniformLocation(u,`offset${d}`,h)}return{program:e,source:l,webGLProgram:u,uniformLocations:m,inShapeInfos:a,outShapeInfo:i,infLoc:c,nanLoc:p}}function sR(r,e){if(r.length!==e.length)throw Error(`Binary was compiled with ${r.length} inputs, but was executed with ${e.length} inputs`);r.forEach((t,o)=>{let n=t.logicalShape,s=e[o],a=s.shape;if(!y.arraysEqual(n,a))throw Error(`Binary was compiled with different shapes than the current args. Shapes ${n} and ${a} must match`);if(t.isUniform&&s.isUniform)return;let i=t.texShape,l=s.isUniform?null:s.texData.texShape;if(!y.arraysEqual(i,l))throw Error(`Binary was compiled with different texture shapes than the current args. Shape ${i} and ${l} must match`)})}function iR(r,e,t,o,n){sR(e.inShapeInfos,t),sR([e.outShapeInfo],[o]);let s=o.texData.texture,a=o.texData.texShape;o.texData.isPacked?r.setOutputPackedMatrixTexture(s,a[0],a[1]):r.setOutputMatrixTexture(s,a[0],a[1]),r.setProgram(e.webGLProgram),W().getNumber("WEBGL_VERSION")===1&&e.infLoc!==null&&r.gl.uniform1f(e.infLoc,Infinity),e.nanLoc!==null&&r.gl.uniform1f(e.nanLoc,NaN),t.forEach((i,l)=>{let u=e.program.variableNames[l],c=e.uniformLocations[u],p=e.uniformLocations[`offset${u}`];if(c!=null){if(i.isUniform){if(y.sizeFromShape(i.shape)<2)r.gl.uniform1f(c,i.uniformValues[0]);else{let m=i.uniformValues;m instanceof Float32Array||(m=new Float32Array(m)),r.gl.uniform1fv(c,m)}return}i.texData.slice!=null&&p!=null&&r.gl.uniform1i(p,i.texData.slice.flatOffset),r.setInputMatrixTexture(i.texData.texture,c,l)}}),n!=null&&n(r,e.webGLProgram),r.executeProgram()}function aR(r,e,t){let o="";e.concat(t).forEach(a=>{let i=a.texData!=null&&a.texData.slice!=null&&a.texData.slice.flatOffset>0,l=a.isUniform?"uniform":a.texData.texShape;o+=`${a.shape}_${l}_${i}`});let n=r.userCode,s=r.constructor.name;return s+="_"+o+"_"+n,s}var{addImpl:lR,bincountImpl:Dx,bincountReduceImpl:uR,ceilImpl:cR,concatImpl:pR,expImpl:mR,expm1Impl:fR,floorImpl:dR,gatherV2Impl:hR,greaterImpl:gR,lessImpl:xR,linSpaceImpl:yR,logImpl:bR,maxImpl:_R,maximumImpl:wR,minimumImpl:vR,multiplyImpl:kR,negImpl:CR,prodImpl:IR,rangeImpl:NR,rsqrtImpl:SR,simpleAbsImpl:$x,sliceImpl:TR,stridedSliceImpl:ER,subImpl:AR,tileImpl:DR,topKImpl:$R,transposeImpl:Up,uniqueImpl:RR}=ok;function Pk(r,e){return["x","y","z","w","u","v"].slice(0,e).map(t=>`${r}.${t}`)}function qt(r,e){return e===1?[r]:Pk(r,e)}function FR(r,e){if(r===1)return"rc";let t="";for(let o=0;o<r;o++)t+=e[o],o<r-1&&(t+=",");return t}var Mk=class{constructor(e){this.variableNames=["A"],this.packedInputs=!1,this.packedOutput=!0,this.outputShape=e;let t=e.length;if(t===0)this.userCode=`
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void main() {
setOutput(vec4(getA(), 0., 0., 0.));
}
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`;else{let o=qt("rc",t),n=ze(t),s=jY(t,e,o),a=qY(t,e[e.length-1],e[e.length-2],o),i=HY(e,o);this.userCode=`
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void main() {
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${n} rc = getOutputCoords();
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if(${s}) {
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setOutput(vec4(0));
} else {
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${a}
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setOutput(vec4(${i}));
}
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}
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`}}};function KY(r,e){let t=[];for(let o=0;o<=1;o++)for(let n=0;n<=1;n++){let s=`${o===0?"r":"rp1"}, ${n===0?"c":"cp1"}`;for(let a=2;a<r;a++)s=`${e[e.length-1-a]},`+s;t.push(s)}return t}function jY(r,e,t){if(r===1)return`rc > ${e[0]}`;let o="";for(let n=r-2;n<r;n++)o+=`${t[n]} >= ${e[n]}`,n<r-1&&(o+="||");return o}function qY(r,e,t,o){if(r===1)return"";let n=o.slice(-2);return`
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int r = ${n[0]};
int c = ${n[1]};
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int rp1 = r + 1;
int cp1 = c + 1;
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bool cEdge = cp1 >= ${e};
bool rEdge = rp1 >= ${t};
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`}function HY(r,e){let t=r.length,o=KY(t,e);return t===1?`getA(rc),
2021-01-12 16:01:34 +01:00
rc + 1 >= ${r[0]} ? 0. : getA(rc + 1),
0, 0`:`getA(${o[0]}),
cEdge ? 0. : getA(${o[1]}),
rEdge ? 0. : getA(${o[2]}),
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rEdge || cEdge ? 0. : getA(${o[3]})`}var oh=class{constructor(e,t){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e;let o="";for(let n=0;n<4;n++){let s="thisRC = rc;";n%2==1&&(s+="thisRC.z += 1;"),n>1&&(s+="thisRC.y += 1;"),o+=`
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${s}
${n>0?"if(thisRC.y < rows && thisRC.z < cols){":""}
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int flatIndex = getFlatIndex(thisRC);
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ivec3 inputRC = inputCoordsFromReshapedOutCoords(flatIndex);
vec2 inputRCInnerDims = vec2(float(inputRC.y),float(inputRC.z));
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result[${n}] =
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getChannel(getA(inputRC.x, inputRC.y, inputRC.z), inputRCInnerDims);
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${n>0?"}":""}
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`}this.userCode=`
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${XY(t)}
${zp(e)}
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void main() {
ivec3 rc = getOutputCoords();
vec4 result = vec4(0.);
ivec3 thisRC;
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int rows = ${e[1]};
int cols = ${e[2]};
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${o}
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setOutput(result);
}
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`}};function XY(r){return`
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ivec3 inputCoordsFromReshapedOutCoords(int index) {
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${Bs(["r","c","d"],r)}
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return ivec3(r, c, d);
}
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`}var Lk=class{constructor(e){this.gpgpu=e,this.numUsedTextures=0,this.numFreeTextures=0,this._numBytesAllocated=0,this._numBytesFree=0,this.freeTextures={},this.logEnabled=!1,this.usedTextures={}}acquireTexture(e,t,o){let n=PR(t,o),s=MR(e,n,o);s in this.freeTextures||(this.freeTextures[s]=[]),s in this.usedTextures||(this.usedTextures[s]=[]);let a=OR(e,n,this.gpgpu.gl,this.gpgpu.textureConfig,o);if(this.freeTextures[s].length>0){this.numFreeTextures--,this.numUsedTextures++,this._numBytesFree-=a,this.log();let l=this.freeTextures[s].shift();return this.usedTextures[s].push(l),l}let i;return n===wr.PACKED_2X2_FLOAT32?i=this.gpgpu.createPackedMatrixTexture(e[0],e[1]):n===wr.PACKED_2X2_FLOAT16?i=this.gpgpu.createFloat16PackedMatrixTexture(e[0],e[1]):n===wr.UNPACKED_FLOAT32?i=this.gpgpu.createFloat32MatrixTexture(e[0],e[1]):n===wr.UNPACKED_FLOAT16?i=this.gpgpu.createFloat16MatrixTexture(e[0],e[1]):n===wr.PACKED_4X1_UNSIGNED_BYTE&&(i=this.gpgpu.createUnsignedBytesMatrixTexture(e[0],e[1])),this.usedTextures[s].push(i),this.numUsedTextures++,this._numBytesAllocated+=a,this.log(),i}releaseTexture(e,t,o,n){if(this.freeTextures==null)return;let s=PR(o,n),a=MR(t,s,n);a in this.freeTextures||(this.freeTextures[a]=[]);let i=OR(t,s,this.gpgpu.gl,this.gpgpu.textureConfig,n),l=W().get("WEBGL_DELETE_TEXTURE_THRESHOLD");l!==-1&&this._numBytesAllocated>l?(this.gpgpu.deleteMatrixTexture(e),this._numBytesAllocated-=i):(this.freeTextures[a].push(e),this.numFreeTextures++,this._numBytesFree+=i),this.numUsedTextures--;let u=this.usedTextures[a],c=u.indexOf(e);if(c<0)throw new Error("Cannot release a texture that was never provided by this texture manager");u.splice(c,1),this.log()}log(){if(!this.logEnabled)return;let e=this.numFreeTextures+this.numUsedTextures;console.log("Free/Used",`${this.numFreeTextures} / ${this.numUsedTextures}`,`(${e})`);let t=this._numBytesFree/this._numBytesAllocated;console.log(`Bytes allocated: ${this._numBytesAllocated}`),console.log(`Bytes unused: ${this._numBytesFree} (${Math.round(100*t)}%)`)}get numBytesAllocated(){return this._numBytesAllocated}get numBytesFree(){return this._numBytesFree}getNumUsedTextures(){return this.numUsedTextures}getNumFreeTextures(){return this.numFreeTextures}dispose(){if(this.freeTextures!=null){for(let e in this.freeTextures)this.freeTextures[e].forEach(t=>{this.gpgpu.deleteMatrixTexture(t)});for(let e in this.usedTextures)this.usedTextures[e].forEach(t=>{this.gpgpu.deleteMatrixTexture(t)});this.freeTextures=null,this.usedTextures=null,this.numUsedTextures=0,this.numFreeTextures=0,this._numBytesAllocated=0,this._numBytesFree=0}}};function YY(r,e){let t=r;if(e===t.R32F)return 4;if(e===t.R16F)return 2;if(e===t.RGBA32F)return 16;if(e===r.RGBA)return 16;if(e===t.RGBA16F)return 8;throw new Error(`Unknown internal format ${e}`)}function OR(r,e,t,o,n){let s=ZY(e,o),a;if(n){let[l,u]=Xi(r[0],r[1]);a=l*u}else{let[l,u]=ac(r[0],r[1]);a=l*u}let i=YY(t,s);return a*i}function ZY(r,e){switch(r){case wr.PACKED_2X2_FLOAT32:return Rk(e);case wr.PACKED_2X2_FLOAT16:return Fk(e);case wr.UNPACKED_FLOAT32:return Ak(e);case wr.UNPACKED_FLOAT16:return Dk(e);case wr.PACKED_4X1_UNSIGNED_BYTE:return $k(e);default:throw new Error(`Unknown physical texture type ${r}`)}}function JY(r){return W().getBool("WEBGL_RENDER_FLOAT32_ENABLED")?r?wr.PACKED_2X2_FLOAT32:wr.UNPACKED_FLOAT32:r?wr.PACKED_2X2_FLOAT16:wr.UNPACKED_FLOAT16}function PR(r,e){if(r===$r.UPLOAD)return wr.PACKED_2X2_FLOAT32;if(r===$r.RENDER||r==null)return JY(e);if(r===$r.DOWNLOAD||r===$r.PIXELS)return wr.PACKED_4X1_UNSIGNED_BYTE;throw new Error(`Unknown logical texture type ${r}`)}function MR(r,e,t){return`${r[0]}_${r[1]}_${e}_${t}`}var mo=class{constructor(e,t){this.variableNames=["A"],this.outputShape=e,this.userCode=`
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float unaryOperation(float x) {
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${t}
}
void main() {
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float x = getAAtOutCoords();
float y = unaryOperation(x);
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setOutput(y);
}
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`}},xr="if (isnan(x)) return x;",LR="return x;",zk="return abs(x);";var zR="return (x >= 0.0) ? x : (exp(x) - 1.0);",BR=xr+`
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return (x < 0.0) ? 0.0 : x;
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`,VR=xr+`
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return (x < 0.0) ? 0.0 : min(6.0, x);
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`,nh="return x;";var WR="return x;",GR=`
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vec4 result;
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result.r = (x.r >= 0.0) ? x.r : (exp(x.r) - 1.0);
result.g = (x.g >= 0.0) ? x.g : (exp(x.g) - 1.0);
result.b = (x.b >= 0.0) ? x.b : (exp(x.b) - 1.0);
result.a = (x.a >= 0.0) ? x.a : (exp(x.a) - 1.0);
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return result;
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`,UR=`
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vec4 result = x * vec4(greaterThanEqual(x, vec4(0.0)));
bvec4 isNaN = isnan(x);
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result.r = isNaN.r ? x.r : result.r;
result.g = isNaN.g ? x.g : result.g;
result.b = isNaN.b ? x.b : result.b;
result.a = isNaN.a ? x.a : result.a;
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return result;
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`,jR=`
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vec4 result = min(x, vec4(6.)) * vec4(greaterThanEqual(x, vec4(0.0)));
bvec4 isNaN = isnan(x);
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result.r = isNaN.r ? x.r : result.r;
result.g = isNaN.g ? x.g : result.g;
result.b = isNaN.b ? x.b : result.b;
result.a = isNaN.a ? x.a : result.a;
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return result;
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`,Vs=class{constructor(e,t){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e,this.userCode=`
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vec4 unaryOperation(vec4 x) {
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${t}
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}
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void main() {
vec4 x = getAAtOutCoords();
vec4 y = unaryOperation(x);
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setOutput(y);
}
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`}};var Bk=class{constructor(e){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!1,this.outputShape=e;let t=e.length,o=qt("rc",t),n=ze(t),s=FR(t,o),a=o.slice(-2),i=t<=1?"rc":`vec2(${a.join(",")})`;this.userCode=`
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void main() {
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${n} rc = getOutputCoords();
vec4 packedInput = getA(${s});
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setOutput(getChannel(packedInput, ${i}));
}
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`}};var QY=Ar.whereImpl,e7=1e-7,t7=1e-4,Rx={};function r7(r){return r in Rx||(Rx[r]={}),Rx[r]}var o7=128,n7=600;function s7(){return W().global.screen==null?1024:W().global.screen.height*W().global.screen.width*window.devicePixelRatio*n7/1024/1024}var Vk=class extends Us{constructor(e){super();if(this.pendingRead=new WeakMap,this.pendingDisposal=new WeakSet,this.dataRefCount=new WeakMap,this.numBytesInGPU=0,this.uploadWaitMs=0,this.downloadWaitMs=0,this.warnedAboutMemory=!1,this.warnedAboutCPUBackend=!1,this.pendingDeletes=0,this.disposed=!1,!W().getBool("HAS_WEBGL"))throw new Error("WebGL is not supported on this device");if(e==null){let t=Wo(W().getNumber("WEBGL_VERSION"));this.binaryCache=r7(W().getNumber("WEBGL_VERSION")),this.gpgpu=new Ok(t),this.canvas=t.canvas,this.gpgpuCreatedLocally=!0}else this.gpgpu=e,this.binaryCache={},this.gpgpuCreatedLocally=!1,this.canvas=e.gl.canvas;this.textureManager=new Lk(this.gpgpu),this.numMBBeforeWarning=s7(),this.texData=new Ja(this,Ns())}numDataIds(){return this.texData.numDataIds()+(this.cpuBackend?this.cpuBackend.numDataIds():0)-this.pendingDeletes}write(e,t,o){if((W().getBool("WEBGL_CHECK_NUMERICAL_PROBLEMS")||W().getBool("DEBUG"))&&this.checkNumericalProblems(e),o==="complex64"&&e!=null)throw new Error("Cannot write to a complex64 dtype. Please use tf.complex(real, imag).");let n={};return this.texData.set(n,{shape:t,dtype:o,values:e,usage:$r.UPLOAD,refCount:1,complexParentRefCount:0}),n}incRef(e){let t=this.texData.get(e);t.refCount++}decRef(e){if(this.texData.has(e)){let t=this.texData.get(e);t.refCount--}}decComplexRef(e){if(this.texData.has(e)){let t=this.texData.get(e);t.complexParentRefCount>0&&t.refCount--}}move(e,t,o,n){if(W().getBool("DEBUG")&&this.checkNumericalProblems(t),n==="complex64")throw new Error("Cannot write to a complex64 dtype. Please use tf.complex(real, imag).");this.texData.set(e,{shape:o,dtype:n,values:t,usage:$r.UPLOAD,refCount:1,complexParentRefCount:0})}disposeIntermediateTensorInfo(e){let t=e.dataId;if(this.texData.has(t)){let o=this.texData.get(t);o.refCount--,o.refCount<1&&this.disposeData(t)}}readSync(e){let t=this.texData.get(e),{values:o,dtype:n,complexTensorInfos:s,slice:a,shape:i,isPacked:l}=t;if(a!=null){let m;l?m=new Vs(i,nh):m=new mo(i,nh);let f=this.runWebGLProgram(m,[{dataId:e,shape:i,dtype:n}],n),d=this.readSync(f.dataId);return this.disposeIntermediateTensorInfo(f),d}if(o!=null)return this.convertAndCacheOnCPU(e);if(n==="string")return o;let u=this.activeTimers!=null,c;u&&(c=y.now());let p;if(n==="complex64"){let m=this.readSync(s.real.dataId),f=this.readSync(s.imag.dataId);p=S.mergeRealAndImagArrays(m,f)}else p=this.getValuesFromTexture(e);return u&&(this.downloadWaitMs+=y.now()-c),this.convertAndCacheOnCPU(e,p)}async read(e){if(this.pendingRead.has(e)){let d=this.pendingRead.get(e);return new Promise(h=>d.push(h))}let t=this.texData.get(e),{values:o,shape:n,slice:s,dtype:a,complexTensorInfos:i,isPacked:l}=t;if(s!=null){let d;l?d=new Vs(n,nh):d=new mo(n,nh);let h=this.runWebGLProgram(d,[{dataId:e,shape:n,dtype:a}],a),g=this.read(h.dataId);return this.disposeIntermediateTensorInfo(h),g}if(o!=null)return this.convertAndCacheOnCPU(e);if(!W().getBool("WEBGL_DOWNLOAD_FLOAT_ENABLED")&&W().getNumber("WEBGL_VERSION")===2)throw new Error("tensor.data() with WEBGL_DOWNLOAD_FLOAT_ENABLED=false and WEBGL_VERSION=2 not yet supported.");let u=null,c;if(a!=="complex64"&&W().get("WEBGL_BUFFER_SUPPORTED")){c=this.decode(e);let d=this.texData.get(c.dataId);u=this.gpgpu.createBufferFromTexture(d.texture,...Sl(n))}this.pendingRead.set(e,[]),a!=="complex64"&&await this.gpgpu.createAndWaitForFence();let p;if(a==="complex64"){let d=await Promise.all([this.read(i.real.dataId),this.read(i.imag.dataId)]),h=d[0],g=d[1];p=S.mergeRealAndImagArrays(h,g)}else if(u==null)p=this.getValuesFromTexture(e);else{let d=y.sizeFromShape(n);p=this.gpgpu.downloadFloat32MatrixFromBuffer(u,d)}c!=null&&this.disposeIntermediateTensorInfo(c);let m=this.convertAndCacheOnCPU(e,p),f=this.pendingRead.get(e);return this.pendingRead.delete(e),f.forEach(d=>d(m)),this.pendingDispo
if (isnan(a)) return a;
if (isnan(b)) return b;
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`;var rs=class{constructor(e,t,o){this.variableNames=["A","B"],this.outputShape=S.assertAndGetBroadcastShape(t,o),this.userCode=`
float binaryOperation(float a, float b) {
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${e}
}
void main() {
float a = getAAtOutCoords();
float b = getBAtOutCoords();
setOutput(binaryOperation(a, b));
}
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`}};var Al=`
result.r = isNaN.r > 0. ? NAN : result.r;
result.g = isNaN.g > 0. ? NAN : result.g;
result.b = isNaN.b > 0. ? NAN : result.b;
result.a = isNaN.a > 0. ? NAN : result.a;
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`;var Ws=class{constructor(e,t,o,n=!1){this.variableNames=["A","B"],this.supportsBroadcasting=!0,this.packedInputs=!0,this.packedOutput=!0,this.outputShape=S.assertAndGetBroadcastShape(t,o);let s=this.outputShape.length,a="";if(n)if(s===0||y.sizeFromShape(this.outputShape)===1)a=`
result.y = 0.;
result.z = 0.;
result.w = 0.;
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`;else if(a=`
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${ze(s)} coords = getOutputCoords();
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`,s===1)a+=`
result.y = (coords + 1) >= ${this.outputShape[0]} ? 0. : result.y;
result.z = 0.;
result.w = 0.;
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`;else{let l=qt("coords",s);a+=`
bool nextRowOutOfBounds =
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(${l[s-2]} + 1) >= ${this.outputShape[s-2]};
bool nextColOutOfBounds =
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(${l[s-1]} + 1) >= ${this.outputShape[s-1]};
result.y = nextColOutOfBounds ? 0. : result.y;
result.z = nextRowOutOfBounds ? 0. : result.z;
result.w = nextColOutOfBounds || nextRowOutOfBounds ? 0. : result.w;
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`}this.userCode=`
vec4 binaryOperation(vec4 a, vec4 b) {
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${e}
}
void main() {
vec4 a = getAAtOutCoords();
vec4 b = getBAtOutCoords();
vec4 result = binaryOperation(a, b);
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${a}
setOutput(result);
}
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`}};function Ht(r){let{inputs:e,backend:t}=r,{x:o}=e;return t.incRef(o.dataId),{dataId:o.dataId,shape:o.shape,dtype:o.dtype}}var HR={kernelName:ms,backendName:"webgl",kernelFunc:Ht};function fo(r){let{inputs:e,backend:t}=r,{real:o,imag:n}=e,s=t.makeTensorInfo(o.shape,"complex64"),a=t.texData.get(s.dataId),i=Ht({inputs:{x:o},backend:t}),l=t.texData.get(i.dataId);l.complexParentRefCount++;let u=Ht({inputs:{x:n},backend:t}),c=t.texData.get(u.dataId);return c.complexParentRefCount++,a.complexTensorInfos={real:i,imag:u},s}var KR={kernelName:Kl,backendName:"webgl",kernelFunc:fo};var Wk="return (a < 0.) ? b * a : a;",Gk=`
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vec4 aLessThanZero = vec4(lessThan(a, vec4(0.)));
return (aLessThanZero * (b * a)) + ((vec4(1.0) - aLessThanZero) * a);
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`;function a7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{alpha:s}=o,a=t.makeTensorInfo([],"float32",y.createScalarValue(s,"float32")),i=W().getBool("WEBGL_PACK_BINARY_OPERATIONS")?new Ws(Gk,n.shape,a.shape):new rs(Wk,n.shape,a.shape),l=t.runWebGLProgram(i,[n,a],n.dtype);return t.disposeIntermediateTensorInfo(a),l}var XR={kernelName:cn,backendName:"webgl",kernelFunc:a7};var Uk="return (a < 0.) ? b * a : a;",jk=`
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vec4 aLessThanZero = vec4(lessThan(a, vec4(0.)));
return (aLessThanZero * (b * a)) + ((vec4(1.0) - aLessThanZero) * a);
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`;function l7(r){let{inputs:e,backend:t}=r,{x:o,alpha:n}=e,s=W().getBool("WEBGL_PACK_BINARY_OPERATIONS")?new Ws(jk,o.shape,n.shape):new rs(Uk,o.shape,n.shape);return t.runWebGLProgram(s,[o,n],o.dtype)}var YR={kernelName:vn,backendName:"webgl",kernelFunc:l7};var Ox="if (isnan(x)) return x;",ZR=`
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if (isnan(a)) return a;
if (isnan(b)) return b;
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`,JR=`
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result.r = isNaN.r > 0. ? NAN : result.r;
result.g = isNaN.g > 0. ? NAN : result.g;
result.b = isNaN.b > 0. ? NAN : result.b;
result.a = isNaN.a > 0. ? NAN : result.a;
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`;function Ce({opSnippet:r,packedOpSnippet:e,cpuKernelImpl:t,dtype:o}){return({inputs:n,backend:s})=>{let{x:a}=n,i=s,l=o||a.dtype;if(i.shouldExecuteOnCPU([a])&&t!=null){let p=i.texData.get(a.dataId),m=t(p.values,l);return i.makeTensorInfo(a.shape,l,m)}let u=W().getBool("WEBGL_PACK_UNARY_OPERATIONS")&&e!=null,c;return u?c=new Vs(a.shape,e):c=new mo(a.shape,r),i.runWebGLProgram(c,[a],l)}}function at({opSnippet:r,packedOpSnippet:e,checkOutOfBounds:t=!1,supportsComplex:o=!1,cpuKernelImpl:n,dtype:s}){return({inputs:a,backend:i})=>{let{a:l,b:u}=a,c=i;if(o&&l.dtype==="complex64"){let d=c.texData.get(l.dataId),h=c.texData.get(u.dataId),[g,x]=[[d.complexTensorInfos.real,h.complexTensorInfos.real],[d.complexTensorInfos.imag,h.complexTensorInfos.imag]].map(_=>{let[w,C]=_,D={dataId:w.dataId,dtype:w.dtype,shape:l.shape},A={dataId:C.dataId,dtype:C.dtype,shape:u.shape},F=new rs(r,l.shape,u.shape);return c.runWebGLProgram(F,[D,A],fr(w.dtype,C.dtype))}),b=fo({inputs:{real:g,imag:x},backend:c});return c.disposeIntermediateTensorInfo(g),c.disposeIntermediateTensorInfo(x),b}let p=s||fr(l.dtype,u.dtype);if(c.shouldExecuteOnCPU([l,u])&&n!=null){let d=c.texData.get(l.dataId),h=c.texData.get(u.dataId),[g,x]=n(l.shape,u.shape,d.values,h.values,p),b=c.makeTensorInfo(x,p),_=c.texData.get(b.dataId);return _.values=g,b}let m=W().getBool("WEBGL_PACK_BINARY_OPERATIONS")&&e!=null,f;return m?f=new Ws(e,l.shape,u.shape,t):f=new rs(r,l.shape,u.shape),c.runWebGLProgram(f,[l,u],p)}}function Dl(r,e=!1){if(r==="linear")return e?WR:LR;if(r==="relu")return e?UR:BR;if(r==="elu")return e?GR:zR;if(r==="relu6")return e?jR:VR;if(r==="prelu")return e?jk:Uk;if(r==="leakyrelu")return e?Gk:Wk;throw new Error(`Activation ${r} has not been implemented for the WebGL backend.`)}var sh=class{constructor(e,t,o,n=!1,s=!1,a=!1,i=null,l=!1,u=!1){this.variableNames=["matrixA","matrixB"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=o;let c=n?e[1]:e[2],p=Math.ceil(c/2),m=n?"i * 2, rc.y":"rc.y, i * 2",f=s?"rc.z, i * 2":"i * 2, rc.z",d=n?["a.xxyy","a.zzww"]:["a.xxzz","a.yyww"],h=s?["b.xzxz","b.ywyw"]:["b.xyxy","b.zwzw"],g="",x="";i&&(l?g=`vec4 activation(vec4 a) {
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vec4 b = getPreluActivationWeightsAtOutCoords();
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${i}
}`:u?g=`vec4 activation(vec4 a) {
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vec4 b = getLeakyreluAlphaAtOutCoords();
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${i}
}`:g=`vec4 activation(vec4 x) {
${i}
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}`,x="result = activation(result);");let b=a?"result += getBiasAtOutCoords();":"";a&&this.variableNames.push("bias"),l&&this.variableNames.push("preluActivationWeights"),u&&this.variableNames.push("leakyreluAlpha");let _="rc.x",w="rc.x";e[0]<t[0]?_=`int(min(float(rc.x), ${e[0]-1}.))`:t[0]<e[0]&&(w=`int(min(float(rc.x), ${t[0]-1}.))`),this.userCode=`
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${g}
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const float sharedDimension = ${p}.0;
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vec4 dot2x2ARowBCol(ivec3 rc) {
vec4 result = vec4(0);
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for (int i = 0; i < ${p}; i++) {
int batchA = ${_};
int batchB = ${w};
vec4 a = getMatrixA(batchA, ${m});
vec4 b = getMatrixB(batchB, ${f});
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// These swizzled products need to be separately added.
// See: https://github.com/tensorflow/tfjs/issues/1735
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result += (${d[0]} * ${h[0]});
result += (${d[1]} * ${h[1]});
}
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return result;
}
void main() {
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ivec3 rc = getOutputCoords();
vec4 result = dot2x2ARowBCol(rc);
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${b}
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${x}
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setOutput(result);
}
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`}};var qk={REAL:"return areal * breal - aimag * bimag;",IMAG:"return areal * bimag + aimag * breal;"},Px=class{constructor(e,t,o){this.variableNames=["AReal","AImag","BReal","BImag"],this.outputShape=S.assertAndGetBroadcastShape(t,o),this.userCode=`
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float binaryOpComplex(
float areal, float aimag, float breal, float bimag) {
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${e}
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}
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void main() {
float areal = getARealAtOutCoords();
float aimag = getAImagAtOutCoords();
float breal = getBRealAtOutCoords();
float bimag = getBImagAtOutCoords();
setOutput(binaryOpComplex(areal, aimag, breal, bimag));
}
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`}};var QR="return a * b;";function Hk(r){let{inputs:e,backend:t}=r,{a:o,b:n}=e,s=S.upcastType(o.dtype,n.dtype);if(o.dtype==="complex64"){let i=t.texData.get(o.dataId),l=t.texData.get(n.dataId),u=new Px(qk.REAL,o.shape,n.shape),c=new Px(qk.IMAG,o.shape,n.shape),p=[{dataId:i.complexTensorInfos.real.dataId,dtype:i.complexTensorInfos.real.dtype,shape:o.shape},{dataId:i.complexTensorInfos.imag.dataId,dtype:i.complexTensorInfos.imag.dtype,shape:o.shape},{dataId:l.complexTensorInfos.real.dataId,dtype:l.complexTensorInfos.real.dtype,shape:n.shape},{dataId:l.complexTensorInfos.imag.dataId,dtype:l.complexTensorInfos.imag.dtype,shape:n.shape}],m=t.runWebGLProgram(u,p,"float32"),f=t.runWebGLProgram(c,p,"float32"),d=fo({inputs:{real:m,imag:f},backend:t});return t.disposeIntermediateTensorInfo(m),t.disposeIntermediateTensorInfo(f),d}if(t.shouldExecuteOnCPU([o,n])){let i=t.texData.get(o.dataId),l=t.texData.get(n.dataId),[u,c]=kR(o.shape,n.shape,i.values,l.values,s),p=t.makeTensorInfo(c,s),m=t.texData.get(p.dataId);return m.values=u,p}let a;return W().getBool("WEBGL_PACK_BINARY_OPERATIONS")?a=new Ws(QR,o.shape,n.shape):a=new rs(QR,o.shape,n.shape),t.runWebGLProgram(a,[o,n],s)}var eF={kernelName:yn,backendName:"webgl",kernelFunc:Hk};function tF(r,e,t){let o=[Tl(r.shape),...El(r.shape)],n={dtype:r.dtype,shape:o,dataId:r.dataId},s=[Tl(e),...El(e)],a=new oh(s,o),i=!0,l=t.runWebGLProgram(a,[n],r.dtype,null,i);return{dataId:l.dataId,shape:e,dtype:l.dtype}}function me(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{shape:s}=o,a=t,i=y.sizeFromShape(n.shape),l=y.inferFromImplicitShape(s,i),u=y.sizeFromShape(l);y.assert(i===u,()=>`The new shape (${l}) has ${u} elements and the old shape (${n.shape}) has ${i} elements. The new shape and old shape must have the same number of elements.`);let c=a.texData.get(n.dataId);return c.isPacked&&!lc(n.shape,l)&&!(c.texture!==null&&lc(c.shape,l))?tF(n,l,a):(a.incRef(n.dataId),{dataId:n.dataId,shape:l,dtype:n.dtype})}var rF={kernelName:gs,backendName:"webgl",kernelFunc:me};var Mx=class{constructor(e,t){this.variableNames=["x"];let{windowSize:o,batchSize:n,inSize:s,outSize:a}=e;this.outputShape=[n,a];let i=Math.floor(o/4)*4,l=o%4,u="sumValue += dot(values, ones);";if(t!=null){let p=1/t;u=`sumValue += dot(values * ${y.isInt(p)?p.toPrecision(2):p}, ones);`}let c="";s%o>0&&(c=`
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if (inIdx < 0 || inIdx >= ${s}) {
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return 0.0;
}
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`),this.userCode=`
const vec4 ones = vec4(1.0, 1.0, 1.0, 1.0);
float getValue(int batch, int inIdx) {
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${c}
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return getX(batch, inIdx);
}
void main() {
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ivec2 coords = getOutputCoords();
int batch = coords[0];
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int outIdx = coords[1];
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int inOffset = outIdx * ${o};
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float sumValue = 0.0;
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for (int i = 0; i < ${i}; i += 4) {
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int inIdx = inOffset + i;
vec4 values = vec4(
getValue(batch, inIdx),
getValue(batch, inIdx + 1),
getValue(batch, inIdx + 2),
getValue(batch, inIdx + 3)
);
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${u}
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}
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int inIdx = inOffset + ${i};
if (${l===1}) {
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vec4 values = vec4(getValue(batch, inIdx), 0.0, 0.0, 0.0);
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${u}
} else if (${l===2}) {
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vec4 values = vec4(
getValue(batch, inIdx),
getValue(batch, inIdx + 1), 0.0, 0.0);
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${u}
} else if (${l===3}) {
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vec4 values = vec4(
getValue(batch, inIdx),
getValue(batch, inIdx + 1),
getValue(batch, inIdx + 2), 0.0);
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${u}
}
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setOutput(sumValue);
}
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`}};var Kk=class{constructor(e,t){this.variableNames=["x"];let{windowSize:o,batchSize:n,inSize:s,outSize:a}=e;this.outputShape=[n,a];let i="0.0",l="";t==="prod"?i="1.0":t==="min"?(i="1.0 / 1e-20",l="min"):t==="max"&&(i="-1.0 / 1e-20",l="max");let u=`${t}(${t}(${t}(minMaxValue[0], minMaxValue[1]), minMaxValue[2]), minMaxValue[3])`;t==="sum"?u="sumValue":t==="prod"?u="prodValue":t==="all"?u="allValue":t==="any"&&(u="anyValue");let c=Math.floor(o/4)*4,p=o%4,m=`
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if (${t==="sum"}) {
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sumValue += dot(values, ones);
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} else if (${t==="prod"}) {
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vec2 tmp = vec2(values[0], values[1]) * vec2(values[2], values[3]);
prodValue *= tmp[0] * tmp[1];
} else {
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minMaxValue = ${l}(values, minMaxValue);
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}
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`,f="vec4";t==="all"?(i="1.0",m=`
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bool reducedAllValue = all(values);
float floatedReducedAllValue = float(reducedAllValue);
allValue = float(allValue >= 1.0 && floatedReducedAllValue >= 1.0);
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`,f="bvec4"):t==="any"&&(i="0.0",m=`
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bool reducedAnyValue = any(values);
float floatedReducedAnyValue = float(reducedAnyValue);
anyValue = float(anyValue >= 1.0 || floatedReducedAnyValue >= 1.0);
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`,f="bvec4");let d="";s%o>0&&(d=`
if (inIdx < 0 || inIdx >= ${s}) {
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return initializationValue;
}
`),this.userCode=`
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const float initializationValue = ${i};
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const vec4 ones = vec4(1.0, 1.0, 1.0, 1.0);
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float getValue(int batch, int inIdx) {
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${d}
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return getX(batch, inIdx);
}
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void main() {
ivec2 coords = getOutputCoords();
int batch = coords[0];
int outIdx = coords[1];
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int inOffset = outIdx * ${o};
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vec4 minMaxValue = vec4(${i});
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float prodValue = 1.0;
float sumValue = 0.0;
float allValue = 1.0;
float anyValue = 0.0;
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for (int i = 0; i < ${c}; i += 4) {
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int inIdx = inOffset + i;
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${f} values = ${f}(
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getValue(batch, inIdx),
getValue(batch, inIdx + 1),
getValue(batch, inIdx + 2),
getValue(batch, inIdx + 3)
);
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${m}
}
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int inIdx = inOffset + ${c};
if (${p===1}) {
${f} values = ${f}(
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getValue(batch, inIdx),
initializationValue,
initializationValue,
initializationValue
);
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${m}
} else if (${p===2}) {
${f} values = ${f}(
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getValue(batch, inIdx),
getValue(batch, inIdx + 1),
initializationValue,
initializationValue
);
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${m}
} else if (${p===3}) {
${f} values = ${f}(
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getValue(batch, inIdx),
getValue(batch, inIdx + 1),
getValue(batch, inIdx + 2),
initializationValue
);
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${m}
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}
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setOutput(${u});
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}
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`}};function u7(r){let e=[];for(;e.length===0||e[e.length-1].outSize!==1;){let t=e.length?e[e.length-1].outSize:r[1],o=S.computeOptimalWindowSize(t);e.push({inSize:t,windowSize:o,outSize:Math.ceil(t/o)})}return e}function To(r,e,t,o){let n=u7(r.shape),s=r;for(let a=0;a<n.length;a++){let{inSize:i,windowSize:l,outSize:u}=n[a],c,p;t==="mean"?c=a===0?new Mx({windowSize:l,inSize:i,batchSize:r.shape[0],outSize:u},i):new Mx({windowSize:l,inSize:i,batchSize:r.shape[0],outSize:u}):c=new Kk({windowSize:l,inSize:i,batchSize:r.shape[0],outSize:u},t),p=s,s=o.runWebGLProgram(c,[s],e),p.dataId!==r.dataId&&o.disposeIntermediateTensorInfo(p)}return s}var Xk=class{constructor(e,t){this.variableNames=["A"];let o=new Array(e.length);for(let a=0;a<o.length;a++)o[a]=e[t[a]];this.outputShape=o,this.rank=o.length;let n=ze(this.rank),s=c7(t);this.userCode=`
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void main() {
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${n} resRC = getOutputCoords();
setOutput(getA(${s}));
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}
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`}};function c7(r){let e=r.length;if(e>6)throw Error(`Transpose for rank ${e} is not yet supported`);let t=["resRC.x","resRC.y","resRC.z","resRC.w","resRC.u","resRC.v"],o=new Array(e);for(let n=0;n<r.length;n++)o[r[n]]=t[n];return o.join()}var Yk=class{constructor(e,t){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0;let o=new Array(e.length);for(let c=0;c<o.length;c++)o[c]=e[t[c]];if(this.outputShape=o,this.rank=o.length,this.rank>6)throw Error(`Packed transpose for rank ${this.rank} is not yet supported.`);let n=ze(this.rank),s=Pk("rc",this.rank),a=new Array(this.rank);for(let c=0;c<t.length;c++)a[t[c]]=s[c];let i=`vec2(${a.slice(-2).join()})`,l=`++${s[this.rank-1]} < ${o[this.rank-1]}`,u=`getChannel(getA(${a.join()}), ${i})`;this.userCode=`
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void main() {
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${n} rc = getOutputCoords();
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vec4 result = vec4(0.);
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result[0] = ${u};
if(${l}) {
result[1] = ${u};
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}
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--${s[this.rank-1]};
if(++${s[this.rank-2]} < ${o[this.rank-2]}) {
result[2] = ${u};
if(${l}) {
result[3] = ${u};
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}
}
setOutput(result);
}
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`}};function $l(r,e,t){let o=W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")?new Yk(r.shape,e):new Xk(r.shape,e);return t.runWebGLProgram(o,[r],r.dtype)}function oF(r,e,t,o){let n=e,s=r.shape.length,a=y.parseAxisParam(n,r.shape),i=a,l=S.getAxesPermutation(i,s),u=l!=null,c=r;u&&(c=$l(r,l,o),i=S.getInnerMostAxes(i.length,s)),S.assertAxesAreInnerMostDims("sum",i,s);let[p,m]=S.computeOutAndReduceShapes(c.shape,i),f=p;t&&(f=S.expandShapeToKeepDim(p,a));let d=y.sizeFromShape(m),g=y.sizeFromShape(r.shape)/d,x=me({inputs:{x:c},attrs:{shape:[g,d]},backend:o}),b=xu(r.dtype),_=To(x,b,"sum",o),w=me({inputs:{x:_},attrs:{shape:f},backend:o});return o.disposeIntermediateTensorInfo(x),o.disposeIntermediateTensorInfo(_),u&&o.disposeIntermediateTensorInfo(c),w}function ih(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,keepDims:a}=o;return oF(n,s,a,t)}var nF={kernelName:$n,backendName:"webgl",kernelFunc:ih};function Bt(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{perm:s}=o,a=t,i=n.shape.length,l=new Array(i);for(let c=0;c<l.length;c++)l[c]=n.shape[s[c]];let u;if(a.shouldExecuteOnCPU([n])){let p=a.texData.get(n.dataId).values,m=Up(p,n.shape,n.dtype,s,l);u=a.makeTensorInfo(l,n.dtype);let f=a.texData.get(u.dataId);f.values=m}else u=$l(n,s,a);return u}var sF={kernelName:Mn,backendName:"webgl",kernelFunc:Bt};var Zk=1e3;function cc({a:r,b:e,transposeA:t,transposeB:o,backend:n,bias:s=null,preluActivationWeights:a=null,leakyreluAlpha:i=0,activation:l=null}){let u=r.shape.length,c=e.shape.length,p=t?r.shape[u-2]:r.shape[u-1],m=o?e.shape[c-1]:e.shape[c-2],f=t?r.shape[u-1]:r.shape[u-2],d=o?e.shape[c-2]:e.shape[c-1],h=r.shape.slice(0,-2),g=e.shape.slice(0,-2),x=y.sizeFromShape(h),b=y.sizeFromShape(g),_=x===b||x===1||b===1;y.assert(u>=2&&c>=2&&_,()=>`Error in matMul: the input batch dimensions must either be the same or at least one input batch dimension must be 1. Got input batch dimensions of (${h}) and (${g}).`);let C=(x>b?r.shape.slice(0,-2):e.shape.slice(0,-2)).concat([f,d]);y.assert(p===m,()=>`Error in matMul: inner shapes (${p}) and (${m}) of Tensors with shapes ${r.shape} and ${e.shape} and transposeA=${t} and transposeB=${o} must match.`);let D=t?[x,p,f]:[x,f,p],A=o?[b,d,m]:[b,m,d],F=me({inputs:{x:r},backend:n,attrs:{shape:D}}),M=me({inputs:{x:e},backend:n,attrs:{shape:A}}),z=[F,M],G=Math.max(x,b),U=t?F.shape[1]:F.shape[2],H=s!=null,J=a!=null,Y=l==="leakyrelu",X=l!=null?Dl(l,!0):null,re=H||J||Y||X!=null,K;if((f===1||d===1)&&U>Zk&&re===!1){let ae=F,ie=M;t&&(ae=Bt({inputs:{x:F},backend:n,attrs:{perm:[0,2,1]}}),z.push(ae)),o&&(ie=Bt({inputs:{x:M},backend:n,attrs:{perm:[0,2,1]}}),z.push(ie));let pe=d!==1,le=d===1,ge=ae;pe&&(ge=me({inputs:{x:ae},backend:n,attrs:{shape:[G,U,1]}}),z.push(ge));let ye=d===1?2:1,be=ie;le&&(be=me({inputs:{x:ie},backend:n,attrs:{shape:[G,1,U]}}),z.push(be));let ke=Hk({inputs:{a:ge,b:be},backend:n});K=ih({inputs:{x:ke},backend:n,attrs:{axis:ye,keepDims:!0}}),z.push(ke)}else{let ae=fr(r.dtype,e.dtype),ie=new sh(D,A,[G,f,d],t,o,H,X,J,Y),pe=[F,M];if(s!=null&&pe.push(s),J&&pe.push(a),Y){let le=n.makeTensorInfo([],"float32",y.createScalarValue(i,"float32"));pe.push(le),z.push(le)}K=n.runWebGLProgram(ie,pe,ae)}let ne=me({inputs:{x:K},backend:n,attrs:{shape:C}});z.push(K);for(let ae of z)n.disposeIntermediateTensorInfo(ae);return ne}function p7(r){let{inputs:e,backend:t,attrs:o}=r,{a:n,b:s,bias:a,preluActivationWeights:i}=e,{transposeA:l,transposeB:u,activation:c,leakyreluAlpha:p}=o;return cc({a:n,b:s,transposeA:l,transposeB:u,backend:t,bias:a,preluActivationWeights:i,leakyreluAlpha:p,activation:c})}var iF={kernelName:vs,backendName:"webgl",kernelFunc:p7};var aF="return abs(x);";function m7(r){let{inputs:e,backend:t}=r,{x:o}=e;if(t.shouldExecuteOnCPU([o])&&o.dtype!=="complex64"){let s=t.texData.get(o.dataId),a=$x(s.values);return t.makeTensorInfo(o.shape,o.dtype,a)}let n;return W().getBool("WEBGL_PACK_UNARY_OPERATIONS")?n=new Vs(o.shape,aF):n=new mo(o.shape,aF),t.runWebGLProgram(n,[o],o.dtype)}var lF={kernelName:ls,backendName:"webgl",kernelFunc:m7};var f7=xr+`
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if (abs(x) > 1.) {
return NAN;
}
return acos(x);
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`,d7=Ce({opSnippet:f7}),uF={kernelName:Hs,backendName:"webgl",kernelFunc:d7};var h7=xr+`
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if (x < 1.0) return NAN;
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return log(x + sqrt(x * x - 1.0));`,g7=Ce({opSnippet:h7}),cF={kernelName:Ks,backendName:"webgl",kernelFunc:g7};var pF="return a + b;",x7=at({opSnippet:pF,packedOpSnippet:pF,supportsComplex:!0,cpuKernelImpl:lR}),mF={kernelName:_o,backendName:"webgl",kernelFunc:x7};var Jk=class{constructor(e,t){this.outputShape=[],this.outputShape=e,this.variableNames=t.map((s,a)=>`T${a}`);let o=[];this.variableNames.forEach(s=>{o.push(`float v${s} = get${s}AtOutCoords();`)});let n=this.variableNames.map(s=>`v${s}`).join(" + ");this.userCode=`
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void main() {
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${o.join(`
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`)}
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float result = ${n};
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setOutput(result);
}
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`}};var Qk=class{constructor(e,t){this.outputShape=[],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e,this.variableNames=t.map((s,a)=>`T${a}`);let o=[];this.variableNames.forEach(s=>{o.push(`vec4 v${s} = get${s}AtOutCoords();`)});let n=this.variableNames.map(s=>`v${s}`).join(" + ");this.userCode=`
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void main() {
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${o.join(`
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`)}
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vec4 result = ${n};
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setOutput(result);
}
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`}};function Lx(r){let{inputs:e,backend:t}=r,o=e;if(o.length===1)return Ht({inputs:{x:o[0]},backend:t});if(o.length>W().get("WEBGL_MAX_TEXTURES_IN_SHADER")){let l=Math.floor(o.length/2),u=Lx({inputs:o.slice(0,l),backend:t}),c=Lx({inputs:o.slice(l),backend:t});return Lx({inputs:[u,c],backend:t})}let n=o.map(l=>l.dtype).reduce((l,u)=>fr(l,u)),s=o.map(l=>l.shape),i=W().getBool("WEBGL_PACK")?new Qk(o[0].shape,s):new Jk(o[0].shape,s);return t.runWebGLProgram(i,o,n)}var fF={kernelName:Ko,backendName:"webgl",kernelFunc:Lx};function y7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,keepDims:a}=o,i=n.shape.length,l=y.parseAxisParam(s,n.shape),u=l,c=S.getAxesPermutation(u,i),p=n;c!=null&&(p=Bt({inputs:{x:n},backend:t,attrs:{perm:c}}),u=S.getInnerMostAxes(u.length,i)),S.assertAxesAreInnerMostDims("all",u,i);let[m,f]=S.computeOutAndReduceShapes(p.shape,u),d=y.sizeFromShape(f),h=me({inputs:{x:p},backend:t,attrs:{shape:[-1,d]}}),g=To(h,h.dtype,"all",t),x;if(a){let b=S.expandShapeToKeepDim(m,l);x=me({inputs:{x:g},backend:t,attrs:{shape:b}})}else x=me({inputs:{x:g},backend:t,attrs:{shape:m}});return t.disposeIntermediateTensorInfo(h),t.disposeIntermediateTensorInfo(g),c!=null&&t.disposeIntermediateTensorInfo(p),x}var dF={kernelName:Gl,backendName:"webgl",kernelFunc:y7};function b7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,keepDims:a}=o,i=n.shape.length,l=y.parseAxisParam(s,n.shape),u=l,c=S.getAxesPermutation(u,i),p=n;c!=null&&(p=Bt({inputs:{x:n},backend:t,attrs:{perm:c}}),u=S.getInnerMostAxes(u.length,i)),S.assertAxesAreInnerMostDims("any",u,i);let[m,f]=S.computeOutAndReduceShapes(p.shape,u),d=y.sizeFromShape(f),h=me({inputs:{x:p},backend:t,attrs:{shape:[-1,d]}}),g=To(h,h.dtype,"any",t),x;if(a){let b=S.expandShapeToKeepDim(m,l);x=me({inputs:{x:g},backend:t,attrs:{shape:b}})}else x=me({inputs:{x:g},backend:t,attrs:{shape:m}});return t.disposeIntermediateTensorInfo(h),t.disposeIntermediateTensorInfo(g),c!=null&&t.disposeIntermediateTensorInfo(p),x}var hF={kernelName:Ul,backendName:"webgl",kernelFunc:b7};var eC=class{constructor(e,t,o){this.variableNames=["A"];let{windowSize:n,batchSize:s,outSize:a}=e;o||this.variableNames.push("bestIndicesA"),this.outputShape=[s,a];let i=t==="max"?">":"<",l=o?"inOffset + i;":"round(getBestIndicesA(batch, inOffset + i));";this.userCode=`
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void main() {
ivec2 coords = getOutputCoords();
int batch = coords[0];
int outIdx = coords[1];
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int inOffset = outIdx * ${n};
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int bestIndex = inOffset;
float bestValue = getA(batch, bestIndex);
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for (int i = 0; i < ${n}; i++) {
int inIdx = ${l};
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float candidate = getA(batch, inIdx);
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if (candidate ${i} bestValue) {
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bestValue = candidate;
bestIndex = inIdx;
}
}
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setOutput(float(bestIndex));
}
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`}};var tC=class{constructor(e,t,o,n){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,y.assert(e.length>2,()=>`Packed arg${o.charAt(0).toUpperCase()+o.slice(1)} supports only inputs with rank above 2.`);let s=e[e.length-1],a=Math.ceil(s/t);this.outputShape=e.slice(0,-1),a>1&&this.outputShape.push(a),n||this.variableNames.push("bestIndicesA");let i=this.outputShape,l=i.length,u=ze(l),c=qt("coords",l),p,m;if(a===1){m=l+1;let F=ze(m);p=`
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${F} sourceLocR = ${F}(${c.join()}, 0);
++${c[l-1]};
${F} sourceLocG = ${F}(${c.join()}, 0);
++${c[l-2]};
${F} sourceLocA = ${F}(${c.join()}, 0);
--${c[l-1]};
${F} sourceLocB = ${F}(${c.join()}, 0);
--${c[l-2]};`}else m=l,p=`
${u} sourceLocR = coords;
++${c[l-1]};
${u} sourceLocG = coords;
++${c[l-2]};
${u} sourceLocA = coords;
--${c[l-1]};
${u} sourceLocB = coords;
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--${c[l-2]};`;let f=["x","y","z","w","u","v"].slice(0,m),d="."+f[m-1],h=f.map(F=>"int "+F),g=qt("sourceLocR",m-1).concat("inIdx.r"),x=qt("sourceLocG",m-1).concat("inIdx.g"),b=qt("sourceLocB",m-1).concat("inIdx.b"),_=qt("sourceLocA",m-1).concat("inIdx.a"),w=o==="max"?"greaterThan":"lessThan",C=n?"":`
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inIdx = round(vec4(getBestIndicesAChannel(${g.join()}),
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getBestIndicesAChannel(${x.join()}),
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getBestIndicesAChannel(${b.join()}),
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getBestIndicesAChannel(${_.join()})));`,D=`vec4(
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getAChannel(${g.join()}),
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hasNextCol ? getAChannel(${x.join()}) : 0.,
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hasNextRow ? getAChannel(${b.join()}) : 0.,
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hasNextRow && hasNextCol ? getAChannel(${_.join()}) : 0.)`,A=n?"":`
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float getBestIndicesAChannel(${h.join()}) {
return getChannel(getBestIndicesA(${f.join()}),
vec2(${f.slice(-2).join()}));
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}`;this.userCode=`
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float getAChannel(${h.join()}) {
return getChannel(getA(${f.join()}),
vec2(${f.slice(-2).join()}));
}
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${A}
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void main() {
${u} coords = getOutputCoords();
bool hasNextCol = ${c[l-1]} < ${i[l-1]-1};
bool hasNextRow = ${c[l-2]} < ${i[l-2]-1};
${p}
ivec4 srcIdx = ivec4(sourceLocR${d}, sourceLocG${d},
sourceLocB${d}, sourceLocA${d}) * ${t};
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ivec4 inIdx = srcIdx;
vec4 bestIndex = vec4(inIdx);
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vec4 bestValue = ${D};
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for (int i = 0; i < ${t}; i++) {
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inIdx = srcIdx;
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${C}
vec4 candidate = ${D};
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bvec4 nan = isnan(candidate);
bvec4 replace = bvec4(
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vec4(${w}(candidate, bestValue)) * (vec4(1.0) - vec4(nan)));
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bestValue = vec4(replace.x ? candidate.x : bestValue.x,
replace.y ? candidate.y : bestValue.y,
replace.z ? candidate.z : bestValue.z,
replace.w ? candidate.w : bestValue.w);
bestIndex = mix(bestIndex, vec4(inIdx), vec4(replace));
srcIdx++;
}
setOutput(bestIndex);
}
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`}};function gF(r,e,t,o=null){let n=e.shape[0],s=e.shape[1];o!=null&&(n=o.shape[0],s=o.shape[1]);let a=S.computeOptimalWindowSize(s),i={windowSize:a,inSize:s,batchSize:n,outSize:Math.ceil(s/a)},l=new eC(i,t,o==null),u=[e];o!=null&&u.push(o);let c=r.runWebGLProgram(l,u,"int32");if(c.shape[1]===1)return c;let p=gF(r,e,t,c);return r.disposeIntermediateTensorInfo(c),p}function xF(r,e,t,o=null){let n=o!=null?o.shape:e.shape,s=n[n.length-1],a=S.computeOptimalWindowSize(s),i=new tC(n,a,t,o==null),l=o==null?[e]:[e,o],u=r.runWebGLProgram(i,l,"int32");if(u.shape.length===e.shape.length){let c=xF(r,e,t,u);return r.disposeIntermediateTensorInfo(u),c}return u}function zx(r,e,t,o){let n=[t];if(S.assertAxesAreInnerMostDims("arg"+o.charAt(0).toUpperCase()+o.slice(1),n,e.shape.length),!W().getBool("WEBGL_PACK_REDUCE")||e.shape.length<=2){let s=[],[a,i]=S.computeOutAndReduceShapes(e.shape,n),l=y.sizeFromShape(i),u=me({inputs:{x:e},backend:r,attrs:{shape:[-1,l]}});s.push(u);let c=gF(r,u,o);s.push(c);let p=me({inputs:{x:c},backend:r,attrs:{shape:a}});return s.forEach(m=>r.disposeIntermediateTensorInfo(m)),p}return xF(r,e,o)}function _7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s}=o,a=y.parseAxisParam(s,n.shape),i=S.getAxesPermutation(a,n.shape.length),l=n,u=[];i!=null&&(l=Bt({inputs:{x:n},backend:t,attrs:{perm:i}}),u.push(l),a=S.getInnerMostAxes(a.length,l.shape.length)),S.assertAxesAreInnerMostDims("argMax",[a[0]],l.shape.length);let c=zx(t,l,a[0],"max");return u.forEach(p=>t.disposeIntermediateTensorInfo(p)),c}var yF={kernelName:Xo,backendName:"webgl",kernelFunc:_7};function w7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s}=o,a=y.parseAxisParam(s,n.shape),i=S.getAxesPermutation(a,n.shape.length),l=n,u=[];i!=null&&(l=Bt({inputs:{x:n},backend:t,attrs:{perm:i}}),u.push(l),a=S.getInnerMostAxes(a.length,l.shape.length)),S.assertAxesAreInnerMostDims("argMin",[a[0]],l.shape.length);let c=zx(t,l,a[0],"min");return u.forEach(p=>t.disposeIntermediateTensorInfo(p)),c}var bF={kernelName:oa,backendName:"webgl",kernelFunc:w7};var v7=xr+`
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if (abs(x) > 1.) {
return NAN;
}
return asin(x);
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`,k7=Ce({opSnippet:v7}),_F={kernelName:Xs,backendName:"webgl",kernelFunc:k7};var C7=xr+"return log(x + sqrt(x * x + 1.0));",I7=Ce({opSnippet:C7}),wF={kernelName:Ys,backendName:"webgl",kernelFunc:I7};var N7=xr+`
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return atan(x);
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`,S7=Ce({opSnippet:N7}),vF={kernelName:Zs,backendName:"webgl",kernelFunc:S7};var T7=ZR+`
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return atan(a, b);
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`,E7=`
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vec4 result = atan(a, b);
vec4 isNaN = min(vec4(isnan(a)) + vec4(isnan(b)), vec4(1.0));
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`+JR+`
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return result;
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`,A7=at({opSnippet:T7,packedOpSnippet:E7}),kF={kernelName:Qs,backendName:"webgl",kernelFunc:A7};var D7=xr+`
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if ((x < -1.0) || (x > 1.0)) return NAN;
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return (log(1.0 + x) - log(1.0 - x)) / 2.0;`,$7=Ce({opSnippet:D7}),CF={kernelName:Js,backendName:"webgl",kernelFunc:$7};var Zi=class{constructor(e,t,o,n=!1,s=!1){if(this.variableNames=["x"],t==="avg"&&o)throw new Error("Cannot compute positions for average pool.");let a=e.filterWidth,i=e.strideHeight,l=e.strideWidth,u=e.dilationHeight,c=e.dilationWidth,p=e.effectiveFilterHeight,m=e.effectiveFilterWidth,f=e.padInfo.top,d=e.padInfo.left;this.outputShape=e.outShape;let h=t==="avg",g=`((batch * ${e.inHeight} + xR) * ${e.inWidth} + xC) * ${e.inChannels} + d`,x=`(xR * ${e.inWidth} + xC) * ${e.inChannels} + d`,b="0.0";if(h||(b="-1.0 / 1e-20"),o){let F=">=";this.userCode=`
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const ivec2 strides = ivec2(${i}, ${l});
const ivec2 pads = ivec2(${f}, ${d});
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void main() {
ivec4 coords = getOutputCoords();
int batch = coords[0];
int d = coords[3];
ivec2 xRCCorner = coords.yz * strides - pads;
int xRCorner = xRCCorner.x;
int xCCorner = xRCCorner.y;
// max/min x(?, ?, d) to get y(yR, yC, d).
// ? = to be determined
float minMaxValue = 0.0;
float minMaxValueFound = 0.0;
int minMaxPosition = 0;
float avgValue = 0.0;
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for (int wR = 0; wR < ${p};
wR += ${u}) {
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int xR = xRCorner + wR;
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int wC = 0; wC < ${m};
wC += ${c}) {
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int xC = xCCorner + wC;
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if (xC < 0 || xC >= ${e.inWidth}) {
continue;
}
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float value = getX(batch, xR, xC, d);
// If a min / max value has already been found, use it. If not,
// use the current value.
float currMinMaxValue = mix(
value, minMaxValue, minMaxValueFound);
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if (value ${F} currMinMaxValue) {
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minMaxValue = value;
minMaxValueFound = 1.0;
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minMaxPosition = ${n?s?g:x:`wR * ${m} + wC`};
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}
}
}
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setOutput(float(minMaxPosition));
}
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`;return}let _="max",w=`${t}(${t}(${t}(minMaxValue[0], minMaxValue[1]), minMaxValue[2]), minMaxValue[3])`;t==="avg"&&(w="avgValue / count");let C=Math.floor(a/4)*4,D=a%4,A=`
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if (${h}) {
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avgValue += dot(values, ones);
} else {
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minMaxValue = ${_}(values, minMaxValue);
}
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`;this.userCode=`
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const ivec2 strides = ivec2(${i}, ${l});
const ivec2 pads = ivec2(${f}, ${d});
const float initializationValue = ${b};
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const vec4 ones = vec4(1.0, 1.0, 1.0, 1.0);
float count = 0.0;
float getValue(int batch, int xR, int xC, int d) {
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if (xC < 0 || xC >= ${e.inWidth}) {
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return initializationValue;
}
count += 1.0;
return getX(batch, xR, xC, d);
}
void main() {
ivec4 coords = getOutputCoords();
int batch = coords[0];
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int d = coords[3];
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ivec2 xRCCorner = coords.yz * strides - pads;
int xRCorner = xRCCorner.x;
int xCCorner = xRCCorner.y;
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// max/min x(?, ?, d) to get y(yR, yC, d).
// ? = to be determined
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vec4 minMaxValue = vec4(${b});
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float avgValue = 0.0;
count = 0.0;
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for (int wR = 0; wR < ${p};
wR += ${u}) {
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int xR = xRCorner + wR;
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int wC = 0; wC < ${C}; wC += 4) {
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int xC = xCCorner + wC * ${c};
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vec4 values = vec4(
getValue(batch, xR, xC, d),
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getValue(batch, xR, xC + ${c}, d),
getValue(batch, xR, xC + 2 * ${c}, d),
getValue(batch, xR, xC + 3 * ${c}, d)
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);
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${A}
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}
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int xC = xCCorner + ${C};
if (${D===1}) {
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vec4 values = vec4(
getValue(batch, xR, xC, d),
initializationValue,
initializationValue,
initializationValue
);
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${A}
} else if (${D===2}) {
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vec4 values = vec4(
getValue(batch, xR, xC, d),
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getValue(batch, xR, xC + ${c}, d),
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initializationValue,
initializationValue
);
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${A}
} else if (${D===3}) {
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vec4 values = vec4(
getValue(batch, xR, xC, d),
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getValue(batch, xR, xC + ${c}, d),
getValue(batch, xR, xC + 2 * ${c}, d),
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initializationValue
);
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${A}
}
}
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setOutput(${w});
}
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`}},pc=class{constructor(e,t,o,n=!1,s=!1){if(this.variableNames=["x"],t==="avg"&&o)throw new Error("Cannot compute positions for average pool.");let a=e.filterWidth,i=e.strideDepth,l=e.strideHeight,u=e.strideWidth,c=e.dilationDepth,p=e.dilationHeight,m=e.dilationWidth,f=e.effectiveFilterDepth,d=e.effectiveFilterHeight,h=e.effectiveFilterWidth,g=e.padInfo.front,x=e.padInfo.top,b=e.padInfo.left;this.outputShape=e.outShape;let _=t==="avg",w="0.0";if(_||(w="-1.0 / 1e-20"),o){let z=">=";this.userCode=`
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const ivec3 strides =
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ivec3(${i}, ${l}, ${u});
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const ivec3 pads = ivec3(${g}, ${x}, ${b});
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void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
int ch = coords.u;
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ivec3 xCorner = ivec3(coords.y, coords.z, coords.w) * strides - pads;
int xDCorner = xCorner.x;
int xRCorner = xCorner.y;
int xCCorner = xCorner.z;
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// max/min x(?, ?, ?, ch) to get y(yD, yR, yC, ch).
// ? = to be determined
float minMaxValue = 0.0;
float minMaxValueFound = 0.0;
int minMaxPosition = 0;
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for (int wD = 0; wD < ${f};
wD += ${c}) {
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int xD = xDCorner + wD;
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if (xD < 0 || xD >= ${e.inDepth}) {
continue;
}
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for (int wR = 0; wR < ${d};
wR += ${p}) {
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int xR = xRCorner + wR;
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if (xR < 0 || xR >= ${e.inHeight}) {
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continue;
}
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for (int wC = 0; wC < ${h};
wC += ${m}) {
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int xC = xCCorner + wC;
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if (xC < 0 || xC >= ${e.inWidth}) {
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continue;
}
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float value = getX(batch, xD, xR, xC, ch);
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// If a min / max value has already been found, use it. If not,
// use the current value.
float currMinMaxValue = mix(
value, minMaxValue, minMaxValueFound);
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if (value ${z} currMinMaxValue) {
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minMaxValue = value;
minMaxValueFound = 1.0;
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minMaxPosition = ${n?s?`(((batch * ${e.inDepth} + xD) * ${e.inHeight} + xR) * ${e.inWidth} + xC) * ${e.inChannels} + ch`:`((xD * ${e.inHeight} + xR) * ${e.inWidth} + xC) * ${e.inChannels} + ch`:`wD * ${d} * ${h} +
wR * ${h} + wC`};
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}
}
}
}
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setOutput(float(minMaxPosition));
}
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`;return}let C="max",D=`${t}(${t}(${t}(minMaxValue[0], minMaxValue[1]), minMaxValue[2]), minMaxValue[3])`;t==="avg"&&(D="avgValue / count");let A=Math.floor(a/4)*4,F=a%4,M=`
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if (${_}) {
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avgValue += dot(values, ones);
} else {
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minMaxValue = ${C}(values, minMaxValue);
}
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`;this.userCode=`
const ivec3 strides =
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ivec3(${i}, ${l}, ${u});
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const ivec3 pads = ivec3(${g}, ${x}, ${b});
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const float initializationValue = ${w};
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const vec4 ones = vec4(1.0, 1.0, 1.0, 1.0);
float count = 0.0;
float getValue(int batch, int xD, int xR, int xC, int ch) {
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if (xC < 0 || xC >= ${e.inWidth}) {
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return initializationValue;
}
count += 1.0;
return getX(batch, xD, xR, xC, ch);
}
void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
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int ch = coords.u;
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ivec3 xCorner = ivec3(coords.y, coords.z, coords.w) * strides - pads;
int xDCorner = xCorner.x;
int xRCorner = xCorner.y;
int xCCorner = xCorner.z;
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// max/min x(?, ?, ?, d) to get y(yD, yR, yC, ch).
// ? = to be determined
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vec4 minMaxValue = vec4(${w});
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float avgValue = 0.0;
count = 0.0;
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for (int wD = 0; wD < ${f};
wD += ${c}) {
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int xD = xDCorner + wD;
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if (xD < 0 || xD >= ${e.inDepth}) {
continue;
}
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for (int wR = 0; wR < ${d};
wR += ${p}) {
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int xR = xRCorner + wR;
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int wC = 0; wC < ${A}; wC += 4) {
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int xC = xCCorner + wC * ${m};
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vec4 values = vec4(
getValue(batch, xD, xR, xC, ch),
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getValue(batch, xD, xR, xC + ${m}, ch),
getValue(batch, xD, xR, xC + 2 * ${m}, ch),
getValue(batch, xD, xR, xC + 3 * ${m}, ch)
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);
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${M}
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}
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int xC = xCCorner + ${A};
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if (${F===1}) {
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vec4 values = vec4(
getValue(batch, xD, xR, xC, ch),
initializationValue,
initializationValue,
initializationValue
);
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${M}
} else if (${F===2}) {
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vec4 values = vec4(
getValue(batch, xD, xR, xC, ch),
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getValue(batch, xD, xR, xC + ${m}, ch),
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initializationValue,
initializationValue
);
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${M}
} else if (${F===3}) {
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vec4 values = vec4(
getValue(batch, xD, xR, xC, ch),
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getValue(batch, xD, xR, xC + ${m}, ch),
getValue(batch, xD, xR, xC + 2 * ${m}, ch),
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initializationValue
);
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${M}
}
}
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setOutput(${D});
}
}
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`}};function R7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e;Yi(n,"avgPool");let{filterSize:s,strides:a,pad:i,dimRoundingMode:l}=o,u=1;y.assert(S.eitherStridesOrDilationsAreOne(a,u),()=>`Error in avgPool: Either strides or dilations must be 1. Got strides ${a} and dilations '${u}'`);let c=S.computePool2DInfo(n.shape,s,a,u,i,l);if(c.filterWidth===1&&c.filterHeight===1&&y.arraysEqual(c.inShape,c.outShape))return Ht({inputs:{x:n},backend:t});let p=new Zi(c,"avg",!1);return t.runWebGLProgram(p,[n],"float32")}var IF={kernelName:Yo,backendName:"webgl",kernelFunc:R7};function F7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{filterSize:s,strides:a,pad:i,dimRoundingMode:l,dataFormat:u}=o,c=[1,1,1],p=S.computePool3DInfo(n.shape,s,a,c,i,l,u),m=new pc(p,"avg",!1);return t.runWebGLProgram(m,[n],"float32")}var NF={kernelName:na,backendName:"webgl",kernelFunc:F7};var rC=class{constructor(e){this.variableNames=["dy"],this.outputShape=e.inShape;let t=e.filterHeight,o=e.filterWidth,n=e.strideHeight,s=e.strideWidth,a=e.dilationHeight,i=e.dilationWidth,l=e.effectiveFilterHeight,u=e.effectiveFilterWidth,c=l-1-e.padInfo.top,p=u-1-e.padInfo.left,m=1/(t*o);this.userCode=`
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const ivec2 pads = ivec2(${c}, ${p});
const float avgMultiplier = float(${m});
void main() {
ivec4 coords = getOutputCoords();
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int b = coords[0];
int d = coords[3];
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ivec2 dyRCCorner = coords.yz - pads;
int dyRCorner = dyRCCorner.x;
int dyCCorner = dyRCCorner.y;
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// Convolve dy(?, ?, d) with pos mask(:, :, d) to get dx(xR, xC, d).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wR = 0; wR < ${l};
wR += ${a}) {
float dyR = float(dyRCorner + wR) / ${n}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 || fract(dyR) > 0.0) {
continue;
}
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int idyR = int(dyR);
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for (int wC = 0; wC < ${u};
wC+= ${i}) {
float dyC = float(dyCCorner + wC) / ${s}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
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int idyC = int(dyC);
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float dyValue = getDy(b, idyR, idyC, d);
dotProd += dyValue * avgMultiplier;
}
}
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setOutput(dotProd);
}
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`}},oC=class{constructor(e){this.variableNames=["dy"],this.outputShape=e.inShape;let t=e.filterDepth,o=e.filterHeight,n=e.filterWidth,s=e.strideDepth,a=e.strideHeight,i=e.strideWidth,l=e.dilationDepth,u=e.dilationHeight,c=e.dilationWidth,p=e.effectiveFilterDepth,m=e.effectiveFilterHeight,f=e.effectiveFilterWidth,d=p-1-e.padInfo.front,h=m-1-e.padInfo.top,g=f-1-e.padInfo.left,x=1/(t*o*n);this.userCode=`
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const ivec3 pads = ivec3(${d}, ${h}, ${g});
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const float avgMultiplier = float(${x});
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void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
int ch = coords.u;
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ivec3 dyCorner = ivec3(coords.y, coords.z, coords.w) - pads;
int dyDCorner = dyCorner.x;
int dyRCorner = dyCorner.y;
int dyCCorner = dyCorner.z;
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// Convolve dy(?, ?, ?, d) with pos mask(:, :, :, ch) to get
// dx(xD, xR, xC, ch).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wD = 0; wD < ${p};
wD += ${l}) {
float dyD = float(dyDCorner + wD) / ${s}.0;
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if (dyD < 0.0 || dyD >= ${e.outDepth}.0 || fract(dyD) > 0.0) {
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continue;
}
int idyD = int(dyD);
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for (int wR = 0; wR < ${m};
wR += ${u}) {
float dyR = float(dyRCorner + wR) / ${a}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 ||
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fract(dyR) > 0.0) {
continue;
}
int idyR = int(dyR);
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for (int wC = 0; wC < ${f};
wC += ${c}) {
float dyC = float(dyCCorner + wC) / ${i}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
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float dyValue = getDy(batch, idyD, idyR, idyC, ch);
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dotProd += dyValue * avgMultiplier;
}
}
}
setOutput(dotProd);
}
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`}};function O7(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,input:s}=e,a=s,{filterSize:i,strides:l,pad:u,dimRoundingMode:c}=o,p=[1,1,1],m=S.computePool3DInfo(a.shape,i,l,p,u,c),f=new oC(m);return t.runWebGLProgram(f,[n],a.dtype)}var SF={kernelName:ql,backendName:"webgl",kernelFunc:O7};function P7(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,input:s}=e,a=s;Yi([n,s],"avgPoolGrad");let{filterSize:i,strides:l,pad:u}=o,c=S.computePool2DInfo(a.shape,i,l,1,u),p=new rC(c);return t.runWebGLProgram(p,[n],a.dtype)}var TF={kernelName:jl,backendName:"webgl",kernelFunc:P7};function M7(r){let{inputs:e,backend:t,attrs:o}=r,{a:n,b:s}=e,{transposeA:a,transposeB:i}=o;return cc({a:n,b:s,transposeA:a,transposeB:i,backend:t})}var EF={kernelName:Zo,backendName:"webgl",kernelFunc:M7};var nC=class{constructor(e,t,o,n,s,a){this.outputShape=[],this.variableNames=["x","mean","variance"],S.assertAndGetBroadcastShape(e,t),S.assertAndGetBroadcastShape(e,o);let i="0.0";n!=null&&(S.assertAndGetBroadcastShape(e,n),this.variableNames.push("offset"),i="getOffsetAtOutCoords()");let l="1.0";s!=null&&(S.assertAndGetBroadcastShape(e,s),this.variableNames.push("scale"),l="getScaleAtOutCoords()"),this.outputShape=e,this.userCode=`
void main() {
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float x = getXAtOutCoords();
float mean = getMeanAtOutCoords();
float variance = getVarianceAtOutCoords();
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float offset = ${i};
float scale = ${l};
float inv = scale * inversesqrt(variance + float(${a}));
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setOutput(dot(vec3(x, -mean, offset), vec3(inv, inv, 1)));
}
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`}};var sC=class{constructor(e,t,o,n,s,a){this.packedInputs=!0,this.packedOutput=!0,this.variableNames=["x","mean","variance"],S.assertAndGetBroadcastShape(e,t),S.assertAndGetBroadcastShape(e,o);let i="vec4(0.0)";n!=null&&(S.assertAndGetBroadcastShape(e,n),this.variableNames.push("offset"),i="getOffsetAtOutCoords()");let l="vec4(1.0)";s!=null&&(S.assertAndGetBroadcastShape(e,s),this.variableNames.push("scale"),l="getScaleAtOutCoords()"),this.outputShape=e,this.userCode=`
void main() {
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vec4 offset = ${i};
vec4 scale = ${l};
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vec4 x = getXAtOutCoords();
vec4 mean = getMeanAtOutCoords();
vec4 variance = getVarianceAtOutCoords();
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vec4 inv = scale * inversesqrt(variance + vec4(${a}));
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setOutput((x - mean) * inv + offset);
}
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`}};var L7=({inputs:r,backend:e,attrs:t})=>{let{x:o,mean:n,variance:s,offset:a,scale:i}=r;y.assert(n.shape.length===s.shape.length,()=>"Batch normalization gradient requires mean and variance to have equal ranks."),y.assert(a==null||n.shape.length===a.shape.length,()=>"Batch normalization gradient requires mean and offset to have equal ranks."),y.assert(i==null||n.shape.length===i.shape.length,()=>"Batch normalization gradient requires mean and scale to have equal ranks.");let{varianceEpsilon:l}=t;l==null&&(l=.001);let u=[o,n,s],c=null;a!=null&&(c=a.shape,u.push(a));let p=null;i!=null&&(p=i.shape,u.push(i));let m=W().getBool("WEBGL_PACK_NORMALIZATION")?new sC(o.shape,n.shape,s.shape,c,p,l):new nC(o.shape,n.shape,s.shape,c,p,l);return e.runWebGLProgram(m,u,u[0].dtype)},AF={kernelName:ln,backendName:"webgl",kernelFunc:L7};var iC=class{constructor(e){this.variableNames=["source"],this.outputShape=e,this.rank=e.length;let t=ze(this.rank),o=`uniform int start[${this.rank}];`,n=z7(this.rank),s,a=e.map((i,l)=>`sourceLoc.${aC[l]} = start[${l}] + coords.${aC[l]};`);s=`
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${t} sourceLoc;
${t} coords = getOutputCoords();
${a.join(`
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`)}
`,this.userCode=`
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${o}
void main() {
${s}
setOutput(getSource(${n}));
}
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`}getCustomSetupFunc(e){if(e.length!==this.rank)throw Error(`The rank (${this.rank}) of the program must match the length of start (${e.length})`);return(t,o)=>{this.startLoc==null&&(this.startLoc=t.getUniformLocationNoThrow(o,"start"),this.startLoc==null)||t.gl.uniform1iv(this.startLoc,e)}}},aC=["x","y","z","w","u","v"];function z7(r){if(r===1)return"sourceLoc";if(r<=6)return aC.slice(0,r).map(e=>"sourceLoc."+e).join(",");throw Error(`Slicing for rank ${r} is not yet supported`)}var lC=class{constructor(e){this.variableNames=["source"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e,this.rank=e.length;let t=ze(this.rank),o=qt("coords",this.rank),n=qt("sourceLoc",this.rank),s=this.rank===1?"sourceLoc":`vec2(${n.slice(-2).join()})`,a=`getChannel(getSource(${n.join()}), ${s})`,i=`
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result.x = ${a};
if (++${o[this.rank-1]} < ${e[this.rank-1]}) {
++${n[this.rank-1]};
result.y = ${a};
--${n[this.rank-1]};
}
`,l=this.rank===1?"":`
--${o[this.rank-1]};
if (++${o[this.rank-2]} < ${e[this.rank-2]}) {
++${n[this.rank-2]};
result.z = ${a};
if (++${o[this.rank-1]} < ${e[this.rank-1]}) {
++${n[this.rank-1]};
result.w = ${a};
}
}
`,u=this.rank<=4?`sourceLoc = coords +
${t}(${e.map((c,p)=>`start[${p}]`).join()});`:e.map((c,p)=>`${n[p]} = ${o[p]} + start[${p}];`).join(`
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`);this.userCode=`
uniform int start[${this.rank}];
void main() {
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${t} coords = getOutputCoords();
${t} sourceLoc;
${u}
vec4 result = vec4(0.);
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${i}
${l}
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setOutput(result);
}
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`}getCustomSetupFunc(e){if(e.length!==this.rank)throw Error(`The rank (${this.rank}) of the program must match the length of start (${e.length})`);return(t,o)=>{this.startLoc==null&&(this.startLoc=t.getUniformLocationNoThrow(o,"start"),this.startLoc==null)||t.gl.uniform1iv(this.startLoc,e)}}};function B7(r,e,t,o){let n=o.texData.get(r.dataId),s=o.makeTensorInfo(t,r.dtype),a=o.texData.get(s.dataId);Object.assign(a,n),a.complexParentRefCount=0,a.refCount=1,a.shape=t,a.dtype=r.dtype;let i=sr.computeFlatOffset(e,y.computeStrides(r.shape));n.slice&&(i+=n.slice.flatOffset),a.slice={flatOffset:i,origDataId:n.slice&&n.slice.origDataId||r.dataId};let l=o.dataRefCount.get(a.slice.origDataId)||1;return o.dataRefCount.set(a.slice.origDataId,l+1),s}function qa(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{begin:s,size:a}=o,[i,l]=sr.parseSliceParams(n,s,a);if(sr.assertParamsValid(n,i,l),y.sizeFromShape(l)===0)return t.makeTensorInfo(l,n.dtype,[]);if(t.shouldExecuteOnCPU([n])||n.dtype==="string"){let p=t.texData.get(n.dataId),m=TR(p.values,i,l,n.shape,n.dtype);return t.makeTensorInfo(l,n.dtype,m)}let{isPacked:u}=t.texData.get(n.dataId),c=sr.isSliceContinous(n.shape,i,l);if(u||!c){let p=W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")?new lC(l):new iC(l),m=p.getCustomSetupFunc(i);return t.runWebGLProgram(p,[n],n.dtype,m)}return t.uploadToGPU(n.dataId),B7(n,i,l,t)}var DF={kernelName:ys,backendName:"webgl",kernelFunc:qa};var V7=r=>{let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{blockShape:s,crops:a}=o;y.assert(n.shape.length<=4,()=>"batchToSpaceND for rank > 4 with a WebGL backend not implemented yet");let i=s.reduce((b,_)=>b*_),l=S.getReshaped(n.shape,s,i),u=S.getPermuted(l.length,s.length),c=S.getReshapedPermuted(n.shape,s,i),p=S.getSliceBeginCoords(a,s.length),m=S.getSliceSize(c,a,s.length),f=[],d=me({inputs:{x:n},backend:t,attrs:{shape:l}}),h=Bt({inputs:{x:d},backend:t,attrs:{perm:u}}),g=me({inputs:{x:h},backend:t,attrs:{shape:c}}),x=qa({inputs:{x:g},backend:t,attrs:{begin:p,size:m}});return f.push(d),f.push(h),f.push(g),f.forEach(b=>t.disposeIntermediateTensorInfo(b)),x},$F={kernelName:sa,backendName:"webgl",kernelFunc:V7};function W7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,weights:s}=e,{size:a}=o,i=t.readSync(n.dataId),l=t.readSync(s.dataId),u=Dx(i,l,s.dtype,s.shape,a);return t.makeTensorInfo([a],s.dtype,u)}var RF={kernelName:Hl,backendName:"webgl",kernelFunc:W7};var G7="return float(a != b);",uC=at({opSnippet:G7,dtype:"bool"}),FF={kernelName:bi,backendName:"webgl",kernelFunc:uC};function Ha(r){let{inputs:e,backend:t}=r,{input:o}=e,n=t.texData.get(o.dataId);return Ht({inputs:{x:n.complexTensorInfos.real},backend:t})}var OF={kernelName:mu,backendName:"webgl",kernelFunc:Ha};var U7="return float(int(x));";function PF(r,e){let t=new mo(r.shape,U7),o=e.runWebGLProgram(t,[r],"int32");return{dataId:o.dataId,shape:o.shape,dtype:o.dtype}}function cC(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{dtype:s}=o;if(s==="complex64"){if(n.dtype==="complex64")return Ht({inputs:{x:n},backend:t});let a=mt(n.shape),i=cC({inputs:{x:n},backend:t,attrs:{dtype:"float32"}}),l=fo({inputs:{real:i,imag:a},backend:t});return a.dispose(),t.disposeIntermediateTensorInfo(i),l}if(n.dtype==="complex64"){let a=Ha({inputs:{input:n},backend:t}),i=cC({inputs:{x:a},backend:t,attrs:{dtype:s}});return t.disposeIntermediateTensorInfo(a),i}if(!y.hasEncodingLoss(n.dtype,s)){let a=Ht({inputs:{x:n},backend:t});return{dataId:a.dataId,shape:a.shape,dtype:s}}if(s==="int32")return PF(n,t);if(s==="bool"){let a=t.makeTensorInfo([],"bool",y.getTypedArrayFromDType("bool",1)),l=uC({inputs:{a:n,b:a},backend:t});return t.disposeIntermediateTensorInfo(a),l}throw new Error(`Error in Cast: failed to cast ${n.dtype} to ${s}`)}var MF={kernelName:$o,backendName:"webgl",kernelFunc:cC};var LF="return ceil(x);",j7=Ce({opSnippet:LF,packedOpSnippet:LF,cpuKernelImpl:cR}),zF={kernelName:ei,backendName:"webgl",kernelFunc:j7};var pC=class{constructor(e){this.variableNames=["A"],this.outputShape=e,this.userCode=`
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uniform float minVal;
uniform float maxVal;
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void main() {
float value = getAAtOutCoords();
if (isnan(value)) {
setOutput(value);
return;
}
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setOutput(clamp(value, minVal, maxVal));
}
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`}getCustomSetupFunc(e,t){return(o,n)=>{this.minLoc==null&&(this.minLoc=o.getUniformLocationNoThrow(n,"minVal"),this.maxLoc=o.getUniformLocationNoThrow(n,"maxVal")),o.gl.uniform1f(this.minLoc,e),o.gl.uniform1f(this.maxLoc,t)}}};var mC=class{constructor(e){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e,this.userCode=`
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uniform float minVal;
uniform float maxVal;
void main() {
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vec4 value = getAAtOutCoords();
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if (any(isnan(value))) {
setOutput(value);
return;
}
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setOutput(clamp(value, vec4(minVal), vec4(maxVal)));
}
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`}getCustomSetupFunc(e,t){return(o,n)=>{this.minLoc==null&&(this.minLoc=o.getUniformLocationNoThrow(n,"minVal"),this.maxLoc=o.getUniformLocationNoThrow(n,"maxVal")),o.gl.uniform1f(this.minLoc,e),o.gl.uniform1f(this.maxLoc,t)}}};function q7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{clipValueMin:s,clipValueMax:a}=o,i;W().getBool("WEBGL_PACK_CLIP")?i=new mC(n.shape):i=new pC(n.shape);let l=i.getCustomSetupFunc(s,a);return t.runWebGLProgram(i,[n],n.dtype,l)}var BF={kernelName:Ro,backendName:"webgl",kernelFunc:q7};var fC=class{constructor(e){this.variableNames=["real","imag"],this.outputShape=e,this.userCode=`
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void main() {
float re = abs(getRealAtOutCoords());
float im = abs(getImagAtOutCoords());
float mx = max(re, im);
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// sadly the length function in glsl is not underflow-safe
// (at least not on Intel GPUs). So the safe solution is
// to ensure underflow-safety in all cases.
setOutput(
mx == 0.0 ? 0.0 : mx * length(vec2(1, min(re, im)/mx))
);
}
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`}};function VF(r,e){return{dataId:e.dataId,dtype:e.dtype,shape:r.shape}}function H7(r){let{inputs:e,backend:t}=r,{x:o}=e,n=t.texData.get(o.dataId),s=new fC(o.shape),a=[VF(o,n.complexTensorInfos.real),VF(o,n.complexTensorInfos.imag)];return t.runWebGLProgram(s,a,a[0].dtype)}var WF={kernelName:ia,backendName:"webgl",kernelFunc:H7};var dC=class{constructor(e){this.outputShape=[],this.outputShape=S.computeOutShape(e,1),this.variableNames=e.map((a,i)=>`T${i}`);let t=new Array(e.length-1);t[0]=e[0][1];for(let a=1;a<t.length;a++)t[a]=t[a-1]+e[a][1];let o=[`if (yC < ${t[0]}) setOutput(getT0(yR, yC));`];for(let a=1;a<t.length;a++){let i=t[a-1];o.push(`else if (yC < ${t[a]}) setOutput(getT${a}(yR, yC-${i}));`)}let n=t.length,s=t[t.length-1];o.push(`else setOutput(getT${n}(yR, yC-${s}));`),this.userCode=`
void main() {
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ivec2 coords = getOutputCoords();
int yR = coords.x;
int yC = coords.y;
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${o.join(`
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`)}
}
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`}};var hC=class{constructor(e,t){this.packedInputs=!0,this.packedOutput=!0,this.outputShape=[],this.outputShape=S.computeOutShape(e,t);let o=this.outputShape,n=o.length,s=ze(n),a=qt("coords",n),i=["x","y","z","w","u","v"].slice(0,n);this.variableNames=e.map((h,g)=>`T${g}`);let l=new Array(e.length-1);l[0]=e[0][t];for(let h=1;h<l.length;h++)l[h]=l[h-1]+e[h][t];let u=i[t],c=i.slice(-2),p=i.join(),m=`if (${u} < ${l[0]}) {
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return getChannel(
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getT0(${p}), vec2(${c.join()}));
}`;for(let h=1;h<l.length;h++){let g=l[h-1];m+=`
if (${u} < ${l[h]} && ${u} >= ${l[h-1]}) {
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return getChannel(
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getT${h}(${Bx(i,u,g)}),
vec2(${Bx(c,u,g)}));
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}`}let f=l.length,d=l[l.length-1];m+=`
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return getChannel(
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getT${f}(${Bx(i,u,d)}),
vec2(${Bx(c,u,d)}));`,this.userCode=`
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float getValue(${i.map(h=>"int "+h)}) {
${m}
}
void main() {
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${s} coords = getOutputCoords();
vec4 result = vec4(getValue(${a}), 0., 0., 0.);
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${a[n-1]} = ${a[n-1]} + 1;
if (${a[n-1]} < ${o[n-1]}) {
result.g = getValue(${a});
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}
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${a[n-2]} = ${a[n-2]} + 1;
if (${a[n-2]} < ${o[n-2]}) {
result.a = getValue(${a});
}
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${a[n-1]} = ${a[n-1]} - 1;
if (${a[n-2]} < ${o[n-2]} &&
${a[n-1]} < ${o[n-1]}) {
result.b = getValue(${a});
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}
setOutput(result);
}
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`}};function Bx(r,e,t){let o=r.indexOf(e);return r.map((s,a)=>a===o?`${s} - ${t}`:s).join()}function mc(r){let{inputs:e,backend:t}=r,{input:o}=e,n=t.texData.get(o.dataId);return Ht({inputs:{x:n.complexTensorInfos.imag},backend:t})}var GF={kernelName:su,backendName:"webgl",kernelFunc:mc};function fc(r,e,t){let o=r[0].dtype;if(o==="complex64"){let u=r.map(d=>Ha({inputs:{input:d},backend:t})),c=r.map(d=>mc({inputs:{input:d},backend:t})),p=fc(u,e,t),m=fc(c,e,t),f=fo({inputs:{real:p,imag:m},backend:t});return u.forEach(d=>t.disposeIntermediateTensorInfo(d)),c.forEach(d=>t.disposeIntermediateTensorInfo(d)),t.disposeIntermediateTensorInfo(p),t.disposeIntermediateTensorInfo(m),f}if(o==="string"){let{tensors2D:u,outShape:c}=UF(r,e,t),p=u.map(g=>({vals:t.readSync(g.dataId),shape:g.shape})),m=u[0].shape[0]===1,f=pR(p,c,o,m),d=S.computeOutShape(r.map(g=>g.shape),e),h=t.makeTensorInfo(d,o,f);return u.forEach(g=>t.disposeIntermediateTensorInfo(g)),h}if(r.length>W().getNumber("WEBGL_MAX_TEXTURES_IN_SHADER")){let u=Math.floor(r.length/2),c=fc(r.slice(0,u),e,t),p=fc(r.slice(u),e,t),m=fc([c,p],e,t);return t.disposeIntermediateTensorInfo(c),t.disposeIntermediateTensorInfo(p),m}if(W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")&&r[0].shape.length>1){let u=new hC(r.map(c=>c.shape),e);return t.runWebGLProgram(u,r,o)}let{tensors2D:n,outShape:s}=UF(r,e,t),a=new dC(n.map(u=>u.shape)),i=t.runWebGLProgram(a,n,o);n.forEach(u=>t.disposeIntermediateTensorInfo(u));let l=me({inputs:{x:i},attrs:{shape:s},backend:t});return t.disposeIntermediateTensorInfo(i),l}function UF(r,e,t){let o=S.computeOutShape(r.map(s=>s.shape),e);return{tensors2D:r.map(s=>me({inputs:{x:s},attrs:{shape:[-1,y.sizeFromShape(s.shape.slice(e))]},backend:t})),outShape:o}}function gC(r){let{inputs:e,backend:t,attrs:o}=r,{axis:n}=o,s=y.parseAxisParam(n,e[0].shape)[0],a=S.computeOutShape(e.map(u=>u.shape),s);if(y.sizeFromShape(a)===0)return t.makeTensorInfo(a,e[0].dtype,[]);let i=e.filter(u=>y.sizeFromShape(u.shape)>0);if(i.length===1)return Ht({inputs:{x:i[0]},backend:t});let l=i.map(u=>u.shape);return S.assertParamsConsistent(l,s),fc(i,s,t)}var jF={kernelName:us,backendName:"webgl",kernelFunc:gC};var ah=class{constructor(e,t=!1,o=null,n=!1,s=!1){this.variableNames=["x","W"],this.outputShape=e.outShape;let a=e.padInfo.top,i=e.padInfo.left,l=e.strideHeight,u=e.strideWidth,c=e.dilationHeight,p=e.dilationWidth,m=e.filterHeight,f=e.filterWidth,d=Math.floor(e.inChannels/4)*4,h=e.inChannels%4,g=e.dataFormat==="channelsLast",x=g?1:2,b=g?2:3,_=g?3:1,w="",C="";o&&(n?w=`float activation(float a) {
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float b = getPreluActivationWeightsAtOutCoords();
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${o}
}`:s?w=`float activation(float a) {
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float b = getLeakyreluAlphaAtOutCoords();
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${o}
}`:w=`
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float activation(float x) {
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${o}
}
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`,C="result = activation(result);");let D=t?"result += getBiasAtOutCoords();":"";t&&this.variableNames.push("bias"),n&&this.variableNames.push("preluActivationWeights"),s&&this.variableNames.push("leakyreluAlpha"),this.userCode=`
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${w}
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const ivec2 strides = ivec2(${l}, ${u});
const ivec2 pads = ivec2(${a}, ${i});
void main() {
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ivec4 coords = getOutputCoords();
int batch = coords[0];
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int d2 = coords[${_}];
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ivec2 xRCCorner =
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ivec2(coords[${x}], coords[${b}]) * strides - pads;
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int xRCorner = xRCCorner.x;
int xCCorner = xRCCorner.y;
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// Convolve x(?, ?, d1) with w(:, :, d1, d2) to get y(yR, yC, d2).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wR = 0; wR < ${m}; wR++) {
int xR = xRCorner + wR * ${c};
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if (xR < 0 || xR >= ${e.inHeight}) {
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continue;
}
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for (int wC = 0; wC < ${f}; wC++) {
int xC = xCCorner + wC * ${p};
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if (xC < 0 || xC >= ${e.inWidth}) {
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continue;
}
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for (int d1 = 0; d1 < ${d}; d1 += 4) {
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vec4 wValues = vec4(
getW(wR, wC, d1, d2),
getW(wR, wC, d1 + 1, d2),
getW(wR, wC, d1 + 2, d2),
getW(wR, wC, d1 + 3, d2)
);
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if (${g}) {
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vec4 xValues = vec4(
getX(batch, xR, xC, d1),
getX(batch, xR, xC, d1 + 1),
getX(batch, xR, xC, d1 + 2),
getX(batch, xR, xC, d1 + 3)
);
dotProd += dot(xValues, wValues);
} else {
vec4 xValues = vec4(
getX(batch, d1, xR, xC),
getX(batch, d1 + 1, xR, xC),
getX(batch, d1 + 2, xR, xC),
getX(batch, d1 + 3, xR, xC)
);
dotProd += dot(xValues, wValues);
}
}
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if (${h===1}) {
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if (${g}) {
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dotProd +=
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getX(batch, xR, xC, ${d}) *
getW(wR, wC, ${d}, d2);
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} else {
dotProd +=
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getX(batch, ${d}, xR, xC) *
getW(wR, wC, ${d}, d2);
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}
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} else if (${h===2}) {
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vec2 wValues = vec2(
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getW(wR, wC, ${d}, d2),
getW(wR, wC, ${d} + 1, d2)
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);
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if (${g}) {
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vec2 xValues = vec2(
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getX(batch, xR, xC, ${d}),
getX(batch, xR, xC, ${d} + 1)
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);
dotProd += dot(xValues, wValues);
} else {
vec2 xValues = vec2(
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getX(batch, ${d}, xR, xC),
getX(batch, ${d} + 1, xR, xC)
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);
dotProd += dot(xValues, wValues);
}
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} else if (${h===3}) {
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vec3 wValues = vec3(
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getW(wR, wC, ${d}, d2),
getW(wR, wC, ${d} + 1, d2),
getW(wR, wC, ${d} + 2, d2)
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);
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if (${g}) {
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vec3 xValues = vec3(
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getX(batch, xR, xC, ${d}),
getX(batch, xR, xC, ${d} + 1),
getX(batch, xR, xC, ${d} + 2)
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);
dotProd += dot(xValues, wValues);
} else {
vec3 xValues = vec3(
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getX(batch, ${d}, xR, xC),
getX(batch, ${d} + 1, xR, xC),
getX(batch, ${d} + 2, xR, xC)
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);
dotProd += dot(xValues, wValues);
}
}
}
}
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float result = dotProd;
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${D}
${C}
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setOutput(result);
}
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`}},xC=class{constructor(e){this.variableNames=["x","W"],this.outputShape=e.outShape;let t=e.padInfo.front,o=e.padInfo.top,n=e.padInfo.left,s=e.strideDepth,a=e.strideHeight,i=e.strideWidth,l=e.dilationDepth,u=e.dilationHeight,c=e.dilationWidth,p=e.filterDepth,m=e.filterHeight,f=e.filterWidth,d=Math.floor(e.inChannels/4)*4,h=e.inChannels%4;this.userCode=`
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const ivec3 strides = ivec3(${s}, ${a}, ${i});
const ivec3 pads = ivec3(${t}, ${o}, ${n});
void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
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int d2 = coords.u;
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ivec3 xFRCCorner = ivec3(coords.y, coords.z, coords.w) * strides - pads;
int xFCorner = xFRCCorner.x;
int xRCorner = xFRCCorner.y;
int xCCorner = xFRCCorner.z;
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// Convolve x(?, ?, ?, d1) with w(:, :, :, d1, d2) to get
// y(yF, yR, yC, d2). ? = to be determined. : = across all
// values in that axis.
float dotProd = 0.0;
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for (int wF = 0; wF < ${p}; wF++) {
int xF = xFCorner + wF * ${l};
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if (xF < 0 || xF >= ${e.inDepth}) {
continue;
}
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for (int wR = 0; wR < ${m}; wR++) {
int xR = xRCorner + wR * ${u};
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int wC = 0; wC < ${f}; wC++) {
int xC = xCCorner + wC * ${c};
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if (xC < 0 || xC >= ${e.inWidth}) {
continue;
}
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for (int d1 = 0; d1 < ${d}; d1 += 4) {
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vec4 xValues = vec4(
getX(batch, xF, xR, xC, d1),
getX(batch, xF, xR, xC, d1 + 1),
getX(batch, xF, xR, xC, d1 + 2),
getX(batch, xF, xR, xC, d1 + 3)
);
vec4 wValues = vec4(
getW(wF, wR, wC, d1, d2),
getW(wF, wR, wC, d1 + 1, d2),
getW(wF, wR, wC, d1 + 2, d2),
getW(wF, wR, wC, d1 + 3, d2)
);
dotProd += dot(xValues, wValues);
}
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if (${h===1}) {
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dotProd +=
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getX(batch, xF, xR, xC, ${d}) *
getW(wF, wR, wC, ${d}, d2);
} else if (${h===2}) {
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vec2 xValues = vec2(
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getX(batch, xF, xR, xC, ${d}),
getX(batch, xF, xR, xC, ${d} + 1)
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);
vec2 wValues = vec2(
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getW(wF, wR, wC, ${d}, d2),
getW(wF, wR, wC, ${d} + 1, d2)
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);
dotProd += dot(xValues, wValues);
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} else if (${h===3}) {
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vec3 xValues = vec3(
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getX(batch, xF, xR, xC, ${d}),
getX(batch, xF, xR, xC, ${d} + 1),
getX(batch, xF, xR, xC, ${d} + 2)
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);
vec3 wValues = vec3(
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getW(wF, wR, wC, ${d}, d2),
getW(wF, wR, wC, ${d} + 1, d2),
getW(wF, wR, wC, ${d} + 2, d2)
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);
dotProd += dot(xValues, wValues);
}
}
}
}
setOutput(dotProd);
}
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`}};var yC=class{constructor(e,t,o){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e;let{filterWidth:n,inChannels:s,strideWidth:a,strideHeight:i,padInfo:l,outWidth:u,dilationWidth:c,dilationHeight:p,dataFormat:m}=o,{left:f,top:d}=l,h=s*n,g=zt(),x=m==="channelsLast",b=x?0:1,_=x?1:2,w="";for(let C=0;C<=1;C++)for(let D=0;D<=1;D++)w+=`
blockIndex = rc.y + ${D};
pos = rc.x + ${C};
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if(blockIndex < ${e[1]} && pos < ${e[0]}) {
offsetY = int(blockIndex / (${u})) * ${i} - ${d};
d0 = offsetY + ${p} * (pos / ${h});
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if(d0 < ${t[b]} && d0 >= 0) {
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offsetX = int(mod(float(blockIndex), ${u}.) * ${a}. - ${f}.);
d1 = offsetX + ${c} * (int(mod(float(pos), ${h}.) / ${s}.));
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if(d1 < ${t[_]} && d1 >= 0) {
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ch = int(mod(float(pos), ${s}.));
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if (${x}) {
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innerDims = vec2(d1, ch);
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result[${C*2+D}] = getChannel(
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getA(d0, int(innerDims.x),
int(innerDims.y)), innerDims);
} else {
innerDims = vec2(d0, d1);
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result[${C*2+D}] = getChannel(
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getA(ch, int(innerDims.x),
int(innerDims.y)), innerDims);
}
}
}
}
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`;this.userCode=`
void main() {
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ivec2 rc = getOutputCoords();
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vec4 result = vec4(0);
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int blockIndex, pos, offsetY, d0, offsetX, d1, ch;
vec2 innerDims;
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${w}
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${g.output} = result;
}
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`}};function Vx({x:r,filter:e,convInfo:t,backend:o,bias:n=null,preluActivationWeights:s=null,leakyreluAlpha:a=0,activation:i=null}){let l=r.shape,u=o.texData.get(r.dataId),c=t.inChannels,p=l[0]*l[1]*l[2],m=t.outChannels,f=t.dataFormat==="channelsLast",d=!1,h=!1,g,x=[],b=(p===1||m===1)&&c>Zk,_=l[2]%2!=0&&!!u.isPacked;if(b||!W().getBool("WEBGL_LAZILY_UNPACK")||!W().getBool("WEBGL_PACK_BINARY_OPERATIONS")||!_){let w=f?l[0]*l[1]*l[2]:l[0]*l[2]*l[3],C=me({inputs:{x:r},backend:o,attrs:{shape:[1,w,t.inChannels]}}),D=me({inputs:{x:e},backend:o,attrs:{shape:[1,t.inChannels,t.outChannels]}}),A=cc({a:C,b:D,transposeA:d,transposeB:h,backend:o,bias:n,activation:i,preluActivationWeights:s,leakyreluAlpha:a});g=me({inputs:{x:A},backend:o,attrs:{shape:t.outShape}}),x.push(C),x.push(D),x.push(A)}else{let w=f?l[0]*l[1]*(l[2]+1):l[0]*l[2]*(l[3]+1),C={dataId:r.dataId,shape:[1,w,t.inChannels],dtype:r.dtype},D=u.shape;u.shape=u.shape.slice(),u.shape[u.shape.length-2]++,y.assert(lc(u.shape,C.shape),()=>`packed reshape ${u.shape} to ${C.shape} isn't free`);let A=me({inputs:{x:e},backend:o,attrs:{shape:[1,t.inChannels,t.outChannels]}});x.push(A);let F=cc({a:C,b:A,backend:o,transposeA:d,transposeB:h,bias:n,activation:i,preluActivationWeights:s,leakyreluAlpha:a}),M=o.texData.get(F.dataId);y.assert(M.isPacked,()=>"batchMatMul result is expected to be packed"),u.shape=D,M.shape=t.outShape,g=Ht({inputs:{x:F},backend:o}),g.shape=t.outShape,x.push(F)}for(let w of x)o.disposeIntermediateTensorInfo(w);return g}function Wx({x:r,filter:e,convInfo:t,backend:o,bias:n=null,preluActivationWeights:s=null,leakyreluAlpha:a=0,activation:i=null}){let{filterWidth:l,filterHeight:u,inChannels:c,outWidth:p,outHeight:m,dataFormat:f}=t,d=f==="channelsLast",h=l*u*c,g=m*p,x=[h,g],b=!0,_=!1,w=[],C=me({inputs:{x:r},backend:o,attrs:{shape:r.shape.slice(1)}}),D=me({inputs:{x:e},backend:o,attrs:{shape:[1,h,y.sizeFromShape(e.shape)/h]}});w.push(C),w.push(D);let A=new yC(x,C.shape,t),F=o.runWebGLProgram(A,[C],"float32"),M=me({inputs:{x:F},backend:o,attrs:{shape:[1,x[0],x[1]]}});w.push(F),w.push(M);let z=n!=null,G=s!=null,U=i==="leakyrelu",H=i?Dl(i,!0):null,J=new sh(M.shape,D.shape,[1,g,t.outChannels],b,_,z,H,G,U),Y=[M,D];if(n&&Y.push(n),G&&Y.push(s),U){let ne=o.makeTensorInfo([],"float32",y.createScalarValue(a,"float32"));Y.push(ne),w.push(ne)}let X=o.runWebGLProgram(J,Y,"float32"),re=d?[1,m,p,t.outChannels]:[1,t.outChannels,m,p],K=me({inputs:{x:X},backend:o,attrs:{shape:re}});w.push(X);for(let ne of w)o.disposeIntermediateTensorInfo(ne);return K}function K7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s}=e,{strides:a,pad:i,dataFormat:l,dilations:u,dimRoundingMode:c}=o,p=S.convertConv2DDataFormat(l),m=S.computeConv2DInfo(n.shape,s.shape,a,u,i,c,!1,p),f;if(m.filterHeight===1&&m.filterWidth===1&&m.dilationHeight===1&&m.dilationWidth===1&&m.strideHeight===1&&m.strideWidth===1&&(m.padInfo.type==="SAME"||m.padInfo.type==="VALID"))f=Vx({x:n,filter:s,convInfo:m,backend:t});else if(W().getBool("WEBGL_CONV_IM2COL")&&n.shape[0]===1)f=Wx({x:n,filter:s,convInfo:m,backend:t});else{let h=new ah(m);f=t.runWebGLProgram(h,[n,s],"float32")}let d=me({inputs:{x:f},backend:t,attrs:{shape:m.outShape}});return t.disposeIntermediateTensorInfo(f),d}var qF={kernelName:Jo,backendName:"webgl",kernelFunc:K7};var bC=class{constructor(e){this.variableNames=["x","dy"],this.outputShape=e.filterShape;let t=e.strideHeight,o=e.strideWidth,n=e.padInfo.top,s=e.padInfo.left,a=e.dataFormat==="channelsLast";this.userCode=`
void main() {
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ivec4 coords = getOutputCoords();
int wR = coords.x;
int wC = coords.y;
int d1 = coords.z;
int d2 = coords.w;
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// Convolve x(?, ?, d1) with dy(:, :, d2) to get dw(wR, wC, d1, d2).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int b = 0; b < ${e.batchSize}; b++) {
for (int yR = 0; yR < ${e.outHeight}; yR++) {
int xR = wR + yR * ${t} - ${n};
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int yC = 0; yC < ${e.outWidth}; yC++) {
int xC = wC + yC * ${o} - ${s};
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if (xC < 0 || xC >= ${e.inWidth}) {
continue;
}
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if (${a}) {
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float dyValue = getDy(b, yR, yC, d2);
float xValue = getX(b, xR, xC, d1);
dotProd += (xValue * dyValue);
} else {
float dyValue = getDy(b, d2, yR, yC);
float xValue = getX(b, d1, xR, xC);
dotProd += (xValue * dyValue);
}
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}
}
}
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setOutput(dotProd);
}
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`}},_C=class{constructor(e){this.variableNames=["dy","W"],this.outputShape=e.inShape;let t=e.filterHeight,o=e.filterWidth,n=e.strideHeight,s=e.strideWidth,a=e.dataFormat==="channelsLast",i=t-1-e.padInfo.top,l=o-1-e.padInfo.left,u=a?1:2,c=a?2:3,p=a?3:1;this.userCode=`
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const ivec2 pads = ivec2(${i}, ${l});
void main() {
ivec4 coords = getOutputCoords();
int batch = coords[0];
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int d1 = coords[${p}];
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ivec2 dyCorner = ivec2(coords[${u}], coords[${c}]) - pads;
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int dyRCorner = dyCorner.x;
int dyCCorner = dyCorner.y;
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// Convolve dy(?, ?, d2) with w(:, :, d1, d2) to compute dx(xR, xC, d1).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wR = 0; wR < ${t}; wR++) {
float dyR = float(dyRCorner + wR) / ${n}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 || fract(dyR) > 0.0) {
continue;
}
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int idyR = int(dyR);
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int wRPerm = ${t} - 1 - wR;
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for (int wC = 0; wC < ${o}; wC++) {
float dyC = float(dyCCorner + wC) / ${s}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
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int wCPerm = ${o} - 1 - wC;
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for (int d2 = 0; d2 < ${e.outChannels}; d2++) {
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if (${a}) {
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float xValue = getDy(batch, idyR, idyC, d2);
float wValue = getW(wRPerm, wCPerm, d1, d2);
dotProd += xValue * wValue;
} else {
float xValue = getDy(batch, d2, idyR, idyC);
float wValue = getW(wRPerm, wCPerm, d1, d2);
dotProd += xValue * wValue;
}
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}
}
}
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setOutput(dotProd);
}
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`}},wC=class{constructor(e){this.variableNames=["x","dy"],this.outputShape=e.filterShape;let t=e.strideDepth,o=e.strideHeight,n=e.strideWidth,s=e.padInfo.front,a=e.padInfo.top,i=e.padInfo.left;this.userCode=`
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void main() {
ivec5 coords = getOutputCoords();
int wF = coords.x;
int wR = coords.y;
int wC = coords.z;
int d1 = coords.w;
int d2 = coords.u;
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float dotProd = 0.0;
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for (int b = 0; b < ${e.batchSize}; b++) {
for (int yF = 0; yF < ${e.outDepth}; yF++) {
int xF = wF + yF * ${t} - ${s};
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if (xF < 0 || xF >= ${e.inDepth}) {
continue;
}
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for (int yR = 0; yR < ${e.outHeight}; yR++) {
int xR = wR + yR * ${o} - ${a};
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int yC = 0; yC < ${e.outWidth}; yC++) {
int xC = wC + yC * ${n} - ${i};
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if (xC < 0 || xC >= ${e.inWidth}) {
continue;
}
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float dyValue = getDy(b, yF, yR, yC, d2);
float xValue = getX(b, xF, xR, xC, d1);
dotProd += (xValue * dyValue);
}
}
}
}
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setOutput(dotProd);
}
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`}},vC=class{constructor(e){this.variableNames=["dy","W"],this.outputShape=e.inShape;let t=e.filterDepth,o=e.filterHeight,n=e.filterWidth,s=e.strideDepth,a=e.strideHeight,i=e.strideWidth,l=t-1-e.padInfo.front,u=o-1-e.padInfo.top,c=n-1-e.padInfo.left;this.userCode=`
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const ivec3 pads = ivec3(${l}, ${u}, ${c});
void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
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int d1 = coords.u;
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ivec3 dyCorner = ivec3(coords.y, coords.z, coords.w) - pads;
int dyFCorner = dyCorner.x;
int dyRCorner = dyCorner.y;
int dyCCorner = dyCorner.z;
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float dotProd = 0.0;
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for (int wF = 0; wF < ${t}; wF++) {
float dyF = float(dyFCorner + wF) / ${s}.0;
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if (dyF < 0.0 || dyF >= ${e.outDepth}.0 || fract(dyF) > 0.0) {
continue;
}
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int idyF = int(dyF);
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int wFPerm = ${t} - 1 - wF;
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for (int wR = 0; wR < ${o}; wR++) {
float dyR = float(dyRCorner + wR) / ${a}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 ||
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fract(dyR) > 0.0) {
continue;
}
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int idyR = int(dyR);
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int wRPerm = ${o} - 1 - wR;
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for (int wC = 0; wC < ${n}; wC++) {
float dyC = float(dyCCorner + wC) / ${i}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
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int wCPerm = ${n} - 1 - wC;
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for (int d2 = 0; d2 < ${e.outChannels}; d2++) {
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float xValue = getDy(batch, idyF, idyR, idyC, d2);
float wValue = getW(wFPerm, wRPerm, wCPerm, d1, d2);
dotProd += xValue * wValue;
}
}
}
}
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setOutput(dotProd);
}
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`}};function X7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,dy:s}=e,{strides:a,pad:i,dataFormat:l,dimRoundingMode:u,filterShape:c}=o,p=S.convertConv2DDataFormat(l),m=S.computeConv2DInfo(n.shape,c,a,1,i,u,!1,p),f=new bC(m);return t.runWebGLProgram(f,[n,s],"float32")}var HF={kernelName:Xl,backendName:"webgl",kernelFunc:X7};function Y7(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,filter:s}=e,{inputShape:a,strides:i,pad:l,dataFormat:u,dimRoundingMode:c}=o,p=S.convertConv2DDataFormat(u),m=S.computeConv2DInfo(a,s.shape,i,1,l,c,!1,p),f=new _C(m);return t.runWebGLProgram(f,[n,s],"float32")}var KF={kernelName:Qo,backendName:"webgl",kernelFunc:Y7};function Z7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s}=e,{strides:a,pad:i,dilations:l}=o,u=S.computeConv3DInfo(n.shape,s.shape,a,l,i),c=new xC(u);return t.runWebGLProgram(c,[n,s],"float32")}var XF={kernelName:aa,backendName:"webgl",kernelFunc:Z7};function J7(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,dy:s}=e,{strides:a,pad:i,filterShape:l}=o,u=S.computeConv3DInfo(n.shape,l,a,1,i),c=new wC(u);return t.runWebGLProgram(c,[n,s],"float32")}var YF={kernelName:Yl,backendName:"webgl",kernelFunc:J7};function Q7(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,filter:s}=e,{pad:a,strides:i,inputShape:l}=o,u=S.computeConv3DInfo(l,s.shape,i,1,a),c=new vC(u);return t.runWebGLProgram(c,[n,s],"float32")}var ZF={kernelName:Zl,backendName:"webgl",kernelFunc:Q7};var eZ=Ox+`
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return cos(x);
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`,tZ=Ce({opSnippet:eZ}),JF={kernelName:en,backendName:"webgl",kernelFunc:tZ};var rZ=`
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float e2x = exp(-x);
return (e2x + 1.0 / e2x) / 2.0;
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`,oZ=Ce({opSnippet:rZ}),QF={kernelName:ti,backendName:"webgl",kernelFunc:oZ};var kC=class{constructor(e,t,o,n,s){this.variableNames=["Image","Boxes","BoxInd"],this.outputShape=[];let[a,i,l,u]=e,[c]=t,[p,m]=o;this.outputShape=[c,p,m,u];let f=n==="bilinear"?1:0,[d,h]=[`${i-1}.0`,`${l-1}.0`],[g,x,b]=p>1?[`${(i-1)/(p-1)}`,"(y2-y1) * height_ratio",`y1*${d} + float(y)*(height_scale)`]:["0.0","0.0",`0.5 * (y1+y2) * ${d}`],[_,w,C]=m>1?[`${(l-1)/(m-1)}`,"(x2-x1) * width_ratio",`x1*${h} + float(x)*(width_scale)`]:["0.0","0.0",`0.5 * (x1+x2) * ${h}`];this.userCode=`
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const float height_ratio = float(${g});
const float width_ratio = float(${_});
void main() {
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ivec4 coords = getOutputCoords();
int b = coords[0];
int y = coords[1];
int x = coords[2];
int d = coords[3];
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// get box vals
float y1 = getBoxes(b,0);
float x1 = getBoxes(b,1);
float y2 = getBoxes(b,2);
float x2 = getBoxes(b,3);
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// get image in batch index
int bInd = round(getBoxInd(b));
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if(bInd < 0 || bInd >= ${a}) {
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return;
}
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float height_scale = ${x};
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float width_scale = ${w};
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float in_y = ${b};
if( in_y < 0.0 || in_y > ${d} ) {
setOutput(float(${s}));
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return;
}
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float in_x = ${C};
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if( in_x < 0.0 || in_x > ${h} ) {
setOutput(float(${s}));
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return;
}
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vec2 sourceFracIndexCR = vec2(in_x,in_y);
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if(${f} == 1) {
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// Compute the four integer indices.
ivec2 sourceFloorCR = ivec2(sourceFracIndexCR);
ivec2 sourceCeilCR = ivec2(ceil(sourceFracIndexCR));
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float topLeft = getImage(b, sourceFloorCR.y, sourceFloorCR.x, d);
float bottomLeft = getImage(b, sourceCeilCR.y, sourceFloorCR.x, d);
float topRight = getImage(b, sourceFloorCR.y, sourceCeilCR.x, d);
float bottomRight = getImage(b, sourceCeilCR.y, sourceCeilCR.x, d);
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vec2 fracCR = sourceFracIndexCR - vec2(sourceFloorCR);
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float top = topLeft + (topRight - topLeft) * fracCR.x;
float bottom = bottomLeft + (bottomRight - bottomLeft) * fracCR.x;
float newValue = top + (bottom - top) * fracCR.y;
setOutput(newValue);
} else {
// Compute the coordinators of nearest neighbor point.
ivec2 sourceNearestCR = ivec2(floor(
sourceFracIndexCR + vec2(0.5,0.5)));
float newValue = getImage(b, sourceNearestCR.y, sourceNearestCR.x, d);
setOutput(newValue);
}
}
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`}};var nZ=r=>{let{inputs:e,backend:t,attrs:o}=r,{image:n,boxes:s,boxInd:a}=e,{cropSize:i,method:l,extrapolationValue:u}=o,c=new kC(n.shape,s.shape,i,l,u);return t.runWebGLProgram(c,[n,s,a],"float32")},eO={kernelName:ri,backendName:"webgl",kernelFunc:nZ};var Gx=class{constructor(e,t,o){this.variableNames=["x"],this.outputShape=e;let n=e.length,s=t?"0.0":`getX(${tO(n,"coords")})`,a=e[e.length-1],i="",l="";t?(i=o?`end != ${a-1}`:"end != 0",l=o?"end + 1":"end - 1"):(i=o?`end + pow2 < ${a}`:"end >= pow2",l=o?"end + pow2":"end - pow2"),this.userCode=`
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uniform float index;
void main() {
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${ze(n)} coords = getOutputCoords();
int end = ${rO(n,"coords")};
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float val = ${s};
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int pow2 = int(pow(2.0, index));
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if (${i}) {
int idx = ${l};
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${rO(n,"coords")} = idx;
val += getX(${tO(n,"coords")});
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}
setOutput(val);
}
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`}getCustomSetupFunc(e){return(t,o)=>{this.index==null&&(this.index=t.getUniformLocation(o,"index")),t.gl.uniform1f(this.index,e)}}};function tO(r,e){if(r===1)return`${e}`;if(r===2)return`${e}.x, ${e}.y`;if(r===3)return`${e}.x, ${e}.y, ${e}.z`;if(r===4)return`${e}.x, ${e}.y, ${e}.z, ${e}.w`;throw Error(`Cumulative sum for rank ${r} is not yet supported`)}function rO(r,e){if(r===1)return`${e}`;if(r===2)return`${e}.y`;if(r===3)return`${e}.z`;if(r===4)return`${e}.w`;throw Error(`Cumulative sum for rank ${r} is not yet supported`)}function sZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,exclusive:a,reverse:i}=o,l=n.shape.length,u=S.getAxesPermutation([s],l),c=n;u!=null&&(c=Bt({inputs:{x:n},backend:t,attrs:{perm:u}}));let p=S.getInnerMostAxes(1,l)[0];if(p!==l-1)throw new Error(`WebGL cumsum shader expects an inner-most axis=${n.shape.length-1} but got axis=${s}`);let m=n.shape[p],f=Ht({inputs:{x:c},backend:t});for(let d=0;d<=Math.ceil(Math.log2(m))-1;d++){let h=new Gx(c.shape,!1,i),g=h.getCustomSetupFunc(d),x=f;f=t.runWebGLProgram(h,[f],f.dtype,g),t.disposeIntermediateTensorInfo(x)}if(a){let d=new Gx(c.shape,a,i),h=f;f=t.runWebGLProgram(d,[f],f.dtype),t.disposeIntermediateTensorInfo(h)}if(u!=null){let d=S.getUndoAxesPermutation(u),h=Bt({inputs:{x:f},backend:t,attrs:{perm:d}});return t.disposeIntermediateTensorInfo(f),t.disposeIntermediateTensorInfo(c),h}return f}var oO={kernelName:tn,backendName:"webgl",kernelFunc:sZ};function iZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,weights:s}=e,{size:a,binaryOutput:i}=o;if(n.shape.length===1){let l=t.readSync(n.dataId),u=t.readSync(s.dataId),c=Dx(l,u,s.dtype,s.shape,a);return t.makeTensorInfo([a],s.dtype,c)}else if(n.shape.length===2){let l=t.bufferSync(n),u=t.bufferSync(s),c=uR(l,u,a,i);return t.makeTensorInfo(c.shape,s.dtype,c.values)}throw new Error(`Error in denseBincount: input must be at most rank 2, but got rank${n.shape.length}.`)}var nO={kernelName:Jl,backendName:"webgl",kernelFunc:iZ};var CC=class{constructor(e,t,o){this.variableNames=["x"],this.outputShape=[],this.outputShape=e,this.blockSize=t,this.dataFormat=o,this.userCode=`
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void main() {
ivec4 coords = getOutputCoords();
int b = coords[0];
int h = ${this.getHeightCoordString()};
int w = ${this.getWidthCoordString()};
int d = ${this.getDepthCoordString()};
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int in_h = h / ${t};
int offset_h = imod(h, ${t});
int in_w = w / ${t};
int offset_w = imod(w, ${t});
int offset_d = (offset_h * ${t} + offset_w) *
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${this.getOutputDepthSize()};
int in_d = d + offset_d;
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float result = ${this.getInputSamplingString()};
setOutput(result);
}
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`}getHeightCoordString(){return this.dataFormat==="NHWC"?"coords[1]":"coords[2]"}getWidthCoordString(){return this.dataFormat==="NHWC"?"coords[2]":"coords[3]"}getDepthCoordString(){return this.dataFormat==="NHWC"?"coords[3]":"coords[1]"}getOutputDepthSize(){return this.dataFormat==="NHWC"?this.outputShape[3]:this.outputShape[1]}getInputSamplingString(){return this.dataFormat==="NHWC"?"getX(b, in_h, in_w, in_d)":"getX(b, in_d, in_h, in_w)"}};function aZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{blockSize:s,dataFormat:a}=o;y.assert(s>1,()=>`blockSize should be > 1 for depthToSpace, but was: ${s}`);let i=n.shape[0],l=a==="NHWC"?n.shape[1]:n.shape[2],u=a==="NHWC"?n.shape[2]:n.shape[3],c=a==="NHWC"?n.shape[3]:n.shape[1],p=l*s,m=u*s,f=c/(s*s),d=a==="NHWC"?[i,p,m,f]:[i,f,p,m],h=new CC(d,s,a);return t.runWebGLProgram(h,[n],n.dtype)}var sO={kernelName:oi,backendName:"webgl",kernelFunc:aZ};var lh=class{constructor(e,t=!1,o=null,n=!1,s=!1){this.variableNames=["x","W"],this.outputShape=e.outShape;let a=e.inHeight,i=e.inWidth,l=e.padInfo.top,u=e.padInfo.left,c=e.strideHeight,p=e.strideWidth,m=e.dilationHeight,f=e.dilationWidth,d=e.filterHeight,h=e.filterWidth,g=e.outChannels/e.inChannels,x="",b="";o&&(n?x=`float activation(float a) {
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float b = getPreluActivationWeightsAtOutCoords();
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${o}
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}`:s?x=`float activation(float a) {
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float b = getLeakyreluAlphaAtOutCoords();
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${o}
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}`:x=`
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float activation(float x) {
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${o}
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}
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`,b="result = activation(result);");let _=t?"result += getBiasAtOutCoords();":"";t&&this.variableNames.push("bias"),n&&this.variableNames.push("preluActivationWeights"),s&&this.variableNames.push("leakyreluAlpha"),this.userCode=`
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${x}
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const ivec2 strides = ivec2(${c}, ${p});
const ivec2 pads = ivec2(${l}, ${u});
void main() {
ivec4 coords = getOutputCoords();
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int batch = coords.x;
ivec2 xRCCorner = coords.yz * strides - pads;
int d2 = coords.w;
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int d1 = d2 / ${g};
int q = d2 - d1 * ${g};
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int xRCorner = xRCCorner.x;
int xCCorner = xRCCorner.y;
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// Convolve x(?, ?, d1) with w(:, :, d1, q) to get y(yR, yC, d2).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
// TO DO(dsmilkov): Flatten the two for loops and vec4 the operations.
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for (int wR = 0; wR < ${d}; wR++) {
int xR = xRCorner + wR * ${m};
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if (xR < 0 || xR >= ${a}) {
continue;
}
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for (int wC = 0; wC < ${h}; wC++) {
int xC = xCCorner + wC * ${f};
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if (xC < 0 || xC >= ${i}) {
continue;
}
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float xVal = getX(batch, xR, xC, d1);
float wVal = getW(wR, wC, d1, q);
dotProd += xVal * wVal;
}
}
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float result = dotProd;
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${_}
${b}
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setOutput(result);
}
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`}};var uh=class{constructor(e,t=!1,o=null,n=!1,s=!1){this.variableNames=["x","W"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=e.outShape;let a=e.inHeight,i=e.inWidth,l=e.padInfo.top,u=e.padInfo.left,c=e.strideHeight,p=e.strideWidth,m=e.dilationHeight,f=e.dilationWidth,d=e.filterHeight,h=e.filterWidth,g=h,x="int xR; int xC; int xCOffset;";for(let C=0;C<d;C++)for(let D=0;D<h;D++)x+=`
vec4 xTexelR${C}C${D*2} = vec4(0.);
vec4 wR${C}C${D} = vec4(0.);
vec4 xR${C}C${D} = vec4(0.);`;for(let C=0;C<d;C++)for(let D=0;D<g;D++){let A=D*2;if(x+=`
xR = xRCorner + ${C*m};
xC = xCCorner + ${A*f};
`,p===1){if(A<h&&(u%2==1?x+=`
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xCOffset = xC + 1;
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if(xR >= 0 && xR < ${a} && xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A} = getX(batch, xR, xCOffset, d1);
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// Need to manually clear unused channels in case
// we're reading from recycled texture.
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if(xCOffset + 1 >= ${i}) {
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xTexelR${C}C${A}.zw = vec2(0.);
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}
} else {
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xTexelR${C}C${A} = vec4(0.);
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}
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xCOffset = xC + 1 - 2;
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if(xR >= 0 && xR < ${a} && xCOffset >= 0 && xCOffset < ${i}) {
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vec4 previous = getX(batch, xR, xCOffset, d1);
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// Need to manually clear unused channels in case
// we're reading from recycled texture.
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if(xCOffset + 1 >= ${i}) {
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previous.zw = vec2(0.);
}
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xR${C}C${A} = vec4(previous.zw, xTexelR${C}C${A}.xy);
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} else {
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xR${C}C${A} = vec4(0, 0, xTexelR${C}C${A}.xy);
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}
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`:x+=`
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if(xR >= 0 && xR < ${a} && xC >= 0 && xC < ${i}) {
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xTexelR${C}C${A} = getX(batch, xR, xC, d1);
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} else {
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xTexelR${C}C${A} = vec4(0.);
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}
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xR${C}C${A} = xTexelR${C}C${A};
`,A+1<h)){let F=u%2==0?y.nearestLargerEven(f):f;f%2==0&&u%2==1||f%2!=0&&u%2!=1?(x+=`
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xCOffset = xC + ${u%2} + ${F};
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if(xR >= 0 && xR < ${a} &&
xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A+2} = getX(batch, xR, xCOffset, d1);
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}
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`,f>1&&(x+=`
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xCOffset -= 2;
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if(xR >= 0 && xR < ${a} &&
xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A} = getX(batch, xR, xCOffset, d1);
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} else {
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xTexelR${C}C${A} = vec4(0.);
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}
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`),x+=`
xR${C}C${A+1} = vec4(
xTexelR${C}C${A}.zw, xTexelR${C}C${A+2}.xy);
`):x+=`
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xCOffset = xC + ${F};
if(xR >= 0 && xR < ${a} &&
xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A+2} = getX(batch, xR, xCOffset, d1);
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}
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xR${C}C${A+1} = xTexelR${C}C${A+2};
`}}else A<h&&(x+=`
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if(xR >= 0 && xR < ${a}) {
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`,u%2==1?(x+=`
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xCOffset = xC + 1 - ${p};
if(xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A} = getX(batch, xR, xCOffset, d1);
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} else {
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xTexelR${C}C${A} = vec4(0.);
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}
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if(xC + 1 >= 0 && xC + 1 < ${i}) {
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xTexelR${C}C${A+2} = getX(batch, xR, xC + 1, d1);
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} else {
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xTexelR${C}C${A+2} = vec4(0.);
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}
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xR${C}C${A} = vec4(
xTexelR${C}C${A}.zw, xTexelR${C}C${A+2}.zw);
`,A+1<h&&(x+=`
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vec4 final = vec4(0.);
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xCOffset = xC + 1 + ${p};
if(xCOffset >= 0 && xCOffset < ${i}) {
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final = getX(batch, xR, xCOffset, d1);
}
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xR${C}C${A+1} = vec4(xTexelR${C}C${A+2}.xy, final.xy);
`)):(x+=`
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if(xC >= 0 && xC < ${i}) {
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xTexelR${C}C${A} = getX(batch, xR, xC, d1);
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} else {
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xTexelR${C}C${A} = vec4(0.);
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}
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xCOffset = xC + ${p};
if(xCOffset >= 0 && xCOffset < ${i}) {
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xTexelR${C}C${A+2} = getX(batch, xR, xCOffset, d1);
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} else {
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xTexelR${C}C${A+2} = vec4(0.);
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}
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xR${C}C${A} = vec4(
xTexelR${C}C${A}.xy, xTexelR${C}C${A+2}.xy);
`,A+1<h&&(x+=`
xR${C}C${A+1} = vec4(
xTexelR${C}C${A}.zw, xTexelR${C}C${A+2}.zw);
`)),x+="}");A<h&&(x+=`
vec4 wTexelR${C}C${A} = getW(${C}, ${A}, d1, q);
wR${C}C${A} = vec4(wTexelR${C}C${A}.xz, wTexelR${C}C${A}.xz);
`,A+1<h&&(x+=`
vec4 wTexelR${C}C${A+1} = getW(${C}, ${A+1}, d1, q);
wR${C}C${A+1} =
vec4(wTexelR${C}C${A+1}.xz, wTexelR${C}C${A+1}.xz);`))}for(let C=0;C<d;C++)for(let D=0;D<h;D++)x+=`dotProd += xR${C}C${D} * wR${C}C${D};`;let b="",_="";o&&(n?b=`vec4 activation(vec4 a) {
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vec4 b = getPreluActivationWeightsAtOutCoords();
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${o}
}`:s?b=`vec4 activation(vec4 a) {
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vec4 b = getLeakyreluAlphaAtOutCoords();
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${o}
}`:b=`vec4 activation(vec4 x) {
${o}
}`,_="result = activation(result);");let w=t?"result += getBiasAtOutCoords();":"";t&&this.variableNames.push("bias"),n&&this.variableNames.push("preluActivationWeights"),s&&this.variableNames.push("leakyreluAlpha"),this.userCode=`
${b}
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const ivec2 strides = ivec2(${c}, ${p});
const ivec2 pads = ivec2(${l}, ${u});
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void main() {
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ivec4 coords = getOutputCoords();
int batch = coords.x;
ivec2 xRCCorner = coords.yz * strides - pads;
int d2 = coords.w;
int d1 = d2;
int q = 0;
int xRCorner = xRCCorner.x;
int xCCorner = xRCCorner.y;
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vec4 dotProd = vec4(0.);
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${x}
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vec4 result = dotProd;
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${w}
${_}
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setOutput(result);
}
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`}};function lZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s}=e,{strides:a,pad:i,dilations:l,dimRoundingMode:u}=o,c=l;c==null&&(c=[1,1]),y.assert(S.eitherStridesOrDilationsAreOne(a,c),()=>`Error in depthwiseConv2d: Either strides or dilations must be 1. Got strides ${a} and dilations '${c}'`);let p=S.computeConv2DInfo(n.shape,s.shape,a,c,i,u,!0),m;return W().getBool("WEBGL_PACK_DEPTHWISECONV")&&p.strideWidth<=2&&p.outChannels/p.inChannels==1?m=new uh(p):m=new lh(p),t.runWebGLProgram(m,[n,s],"float32")}var iO={kernelName:rn,backendName:"webgl",kernelFunc:lZ};var IC=class{constructor(e){this.variableNames=["x","dy"],this.outputShape=e.filterShape;let t=e.strideHeight,o=e.strideWidth,n=e.padInfo.top,s=e.padInfo.left,a=e.outChannels/e.inChannels;this.userCode=`
void main() {
ivec4 coords = getOutputCoords();
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int wR = coords.x;
int wC = coords.y;
int d1 = coords.z;
int dm = coords.w;
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int d2 = d1 * ${a} + dm;
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float dotProd = 0.0;
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// TO DO: Vec4 over the batch size
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for (int b = 0; b < ${e.batchSize}; b++) {
for (int yR = 0; yR < ${e.outHeight}; yR++) {
int xR = wR + yR * ${t} - ${n};
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if (xR < 0 || xR >= ${e.inHeight}) {
continue;
}
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for (int yC = 0; yC < ${e.outWidth}; yC++) {
int xC = wC + yC * ${o} - ${s};
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if (xC < 0 || xC >= ${e.inWidth}) {
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continue;
}
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float dyValue = getDy(b, yR, yC, d2);
float xValue = getX(b, xR, xC, d1);
dotProd += (xValue * dyValue);
}
}
}
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setOutput(dotProd);
}
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`}},NC=class{constructor(e){this.variableNames=["dy","W"],this.outputShape=e.inShape;let t=e.filterHeight,o=e.filterWidth,n=e.strideHeight,s=e.strideWidth,a=t-1-e.padInfo.top,i=o-1-e.padInfo.left,l=e.outChannels/e.inChannels;this.userCode=`
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const ivec2 pads = ivec2(${a}, ${i});
void main() {
ivec4 coords = getOutputCoords();
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int batch = coords[0];
int d1 = coords[3];
ivec2 dyCorner = coords.yz - pads;
int dyRCorner = dyCorner.x;
int dyCCorner = dyCorner.y;
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float dotProd = 0.0;
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for (int wR = 0; wR < ${t}; wR++) {
float dyR = float(dyRCorner + wR) / ${n}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 || fract(dyR) > 0.0) {
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continue;
}
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int idyR = int(dyR);
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int wRPerm = ${t} - 1 - wR;
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for (int wC = 0; wC < ${o}; wC++) {
float dyC = float(dyCCorner + wC) / ${s}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
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int wCPerm = ${o} - 1 - wC;
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// TO DO: Vec4 over the channelMul
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for (int dm = 0; dm < ${l}; dm++) {
int d2 = d1 * ${l} + dm;
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float xValue = getDy(batch, idyR, idyC, d2);
float wValue = getW(wRPerm, wCPerm, d1, dm);
dotProd += xValue * wValue;
}
}
}
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setOutput(dotProd);
}
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`}};function uZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,dy:s}=e,{strides:a,dilations:i,pad:l,dimRoundingMode:u,filterShape:c}=o,p=S.computeConv2DInfo(n.shape,c,a,i,l,u,!0),m=new IC(p);return t.runWebGLProgram(m,[n,s],"float32")}var aO={kernelName:Ql,backendName:"webgl",kernelFunc:uZ};function cZ(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,filter:s}=e,{strides:a,dilations:i,pad:l,dimRoundingMode:u,inputShape:c}=o,p=S.computeConv2DInfo(c,s.shape,a,i,l,u,!0),m=new NC(p);return t.runWebGLProgram(m,[n,s],"float32")}var lO={kernelName:eu,backendName:"webgl",kernelFunc:cZ};var SC=class{constructor(e){this.variableNames=["X"],this.outputShape=[e,e],this.userCode=`
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void main() {
ivec2 coords = getOutputCoords();
float val = coords[0] == coords[1] ? getX(coords[0]) : 0.0;
setOutput(val);
}
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`}};function pZ(r){let{inputs:e,backend:t}=r,{x:o}=e,n=[...o.shape,...o.shape],s=y.sizeFromShape(o.shape),a=me({inputs:{x:o},backend:t,attrs:{shape:[s]}}),i=new SC(s),l=t.runWebGLProgram(i,[a],a.dtype),u=me({inputs:{x:l},backend:t,attrs:{shape:n}});return t.disposeIntermediateTensorInfo(a),t.disposeIntermediateTensorInfo(l),u}var uO={kernelName:tu,backendName:"webgl",kernelFunc:pZ};var TC=class{constructor(e){this.variableNames=["x","W"],this.outputShape=e.outShape;let{inHeight:t,inWidth:o,padInfo:n,strideHeight:s,strideWidth:a,filterHeight:i,filterWidth:l,dilationHeight:u,dilationWidth:c}=e,{top:p,left:m}=n;this.userCode=`
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const ivec2 strides = ivec2(${s}, ${a});
const ivec2 pads = ivec2(${p}, ${m});
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const float neg_infinity = -3.4e38;
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void main() {
ivec4 coords = getOutputCoords();
int batch = coords.x;
int d1 = coords.w;
ivec2 outTopLeftCorner =
coords.yz * strides - pads;
int hBeg = outTopLeftCorner.x;
int wBeg = outTopLeftCorner.y;
float curVal = neg_infinity;
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for (int h = 0; h < ${i}; h++) {
int hIn = hBeg + h * ${u};
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if (hIn >= 0 && hIn < ${t}) {
for (int w = 0; w < ${l}; w++) {
int wIn = wBeg + w * ${c};
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if (wIn >= 0 && wIn < ${o}) {
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float xVal = getX(batch, hIn, wIn, d1);
float wVal = getW(h, w, d1);
float val = xVal + wVal;
if (val > curVal) {
curVal = val;
}
}
}
}
}
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float result = curVal;
setOutput(result);
}
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`}};function mZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s}=e,{strides:a,pad:i,dilations:l}=o,u=S.computeDilation2DInfo(n.shape,s.shape,a,i,"NHWC",l),c,p=new TC(u);c=t.runWebGLProgram(p,[n,s],"float32");let m=me({inputs:{x:c},backend:t,attrs:{shape:u.outShape}});return t.disposeIntermediateTensorInfo(c),m}var cO={kernelName:la,backendName:"webgl",kernelFunc:mZ};var fZ="return (x >= 0.0) ? x : (exp(x) - 1.0);",dZ=`
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vec4 result;
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result.r = (x.r >= 0.0) ? x.r : (exp(x.r) - 1.0);
result.g = (x.g >= 0.0) ? x.g : (exp(x.g) - 1.0);
result.b = (x.b >= 0.0) ? x.b : (exp(x.b) - 1.0);
result.a = (x.a >= 0.0) ? x.a : (exp(x.a) - 1.0);
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return result;
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`,hZ=Ce({opSnippet:fZ,packedOpSnippet:dZ}),pO={kernelName:ni,backendName:"webgl",kernelFunc:hZ};var gZ="return (b >= 1.0) ? a : a * (b + 1.0);",xZ=`
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vec4 bGTEZero = vec4(greaterThanEqual(b, vec4(0.)));
return (bGTEZero * a) + ((vec4(1.0) - bGTEZero) * (a * (b + vec4(1.0))));
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`,yZ=r=>{let{inputs:e,backend:t}=r,{dy:o,y:n}=e,s=W().getBool("WEBGL_PACK_BINARY_OPERATIONS")?new Ws(xZ,o.shape,n.shape):new rs(gZ,o.shape,n.shape);return t.runWebGLProgram(s,[o,n],o.dtype)},mO={kernelName:ru,backendName:"webgl",kernelFunc:yZ};var bZ=`
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return vec4(equal(a, b));
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`,_Z="return float(a == b);",wZ=at({opSnippet:_Z,packedOpSnippet:bZ,dtype:"bool"}),fO={kernelName:ii,backendName:"webgl",kernelFunc:wZ};var vZ=`
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// Error function is calculated approximately with elementary function.
// See "Handbook of Mathematical Functions with Formulas,
// Graphs, and Mathematical Tables", Abramowitz and Stegun.
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float p = ${S.ERF_P};
float a1 = ${S.ERF_A1};
float a2 = ${S.ERF_A2};
float a3 = ${S.ERF_A3};
float a4 = ${S.ERF_A4};
float a5 = ${S.ERF_A5};
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float sign = sign(x);
x = abs(x);
float t = 1.0 / (1.0 + p * x);
return sign * (1.0 - (((((a5*t + a4)*t) + a3)*t + a2)*t + a1)*t*exp(-x*x));
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`,kZ=Ce({opSnippet:vZ}),dO={kernelName:si,backendName:"webgl",kernelFunc:kZ};var hO="return exp(x);",EC=Ce({opSnippet:hO,packedOpSnippet:hO,cpuKernelImpl:mR}),gO={kernelName:nn,backendName:"webgl",kernelFunc:EC};function Ux(r){let{inputs:e,attrs:t,backend:o}=r,{dim:n}=t,{input:s}=e,a=s.shape.length,i=s.shape.slice(),l=n;return n<0&&(y.assert(-(a+1)<=n,()=>`Axis must be in the interval [${-(a+1)}, ${a}]`),l=a+n+1),i.splice(l,0,1),me({inputs:{x:s},backend:o,attrs:{shape:i}})}var xO={kernelName:cs,backendName:"webgl",kernelFunc:Ux};var yO="return exp(x) - 1.0;",CZ=Ce({opSnippet:yO,packedOpSnippet:yO,cpuKernelImpl:fR}),bO={kernelName:ai,backendName:"webgl",kernelFunc:CZ};var jx=class{constructor(e,t,o){this.variableNames=["real","imag"];let n=t[1];this.outputShape=t;let s=o?`2.0 * ${Math.PI}`:`-2.0 * ${Math.PI}`,a=o?`${n}.0`:"1.0",i;if(e==="real")i="return real * expR - imag * expI;";else if(e==="imag")i="return real * expI + imag * expR;";else throw new Error(`FFT component must be either "real" or "imag", got ${e}.`);this.userCode=`
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const float exponentMultiplier = ${s};
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float unaryOpComplex(float real, float expR, float imag, float expI) {
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${i}
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}
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float mulMatDFT(int batch, int index) {
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float indexRatio = float(index) / float(${n});
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float exponentMultiplierTimesIndexRatio =
exponentMultiplier * indexRatio;
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float result = 0.0;
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for (int i = 0; i < ${n}; i++) {
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// x = (-2|2 * PI / N) * index * i;
float x = exponentMultiplierTimesIndexRatio * float(i);
float expR = cos(x);
float expI = sin(x);
float real = getReal(batch, i);
float imag = getImag(batch, i);
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result +=
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unaryOpComplex(real, expR, imag, expI) / ${a};
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}
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return result;
}
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void main() {
ivec2 coords = getOutputCoords();
setOutput(mulMatDFT(coords[0], coords[1]));
}
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`}};function qx(r,e,t){let o=t.texData.get(r.dataId),n=y.sizeFromShape(r.shape),s=r.shape[r.shape.length-1],a=n/s,i=me({inputs:{x:r},backend:t,attrs:{shape:[a,s]}}),l=i.shape,u=new jx("real",l,e),c=new jx("imag",l,e),p=[{dataId:o.complexTensorInfos.real.dataId,dtype:o.complexTensorInfos.real.dtype,shape:l},{dataId:o.complexTensorInfos.imag.dataId,dtype:o.complexTensorInfos.imag.dtype,shape:l}],m=t.runWebGLProgram(u,p,"float32"),f=t.runWebGLProgram(c,p,"float32"),d=fo({inputs:{real:m,imag:f},backend:t});t.disposeIntermediateTensorInfo(m),t.disposeIntermediateTensorInfo(f);let h=me({inputs:{x:d},backend:t,attrs:{shape:r.shape}});return t.disposeIntermediateTensorInfo(i),t.disposeIntermediateTensorInfo(d),h}function IZ(r){let{inputs:e,backend:t}=r,{input:o}=e;return qx(o,!1,t)}var _O={kernelName:ou,backendName:"webgl",kernelFunc:IZ};var AC=class{constructor(e,t){this.outputShape=[],this.variableNames=["x"],this.outputShape=e,this.userCode=`
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uniform float value;
void main() {
// Input can be obtained from uniform value.
setOutput(value);
}
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`}getCustomSetupFunc(e){return(t,o)=>{this.valueLoc==null&&(this.valueLoc=t.getUniformLocationNoThrow(o,"value")),t.gl.uniform1f(this.valueLoc,e)}}};function ch(r){let{backend:e,attrs:t}=r,{shape:o,value:n}=t,{dtype:s}=t;if(s=s||y.inferDtype(n),s==="string"){let a=y.getArrayFromDType(s,y.sizeFromShape(o));return a.fill(n),e.makeTensorInfo(o,s,a)}else{let a=new AC(o,n),i=a.getCustomSetupFunc(n);return e.runWebGLProgram(a,[],s,i)}}var wO={kernelName:ua,backendName:"webgl",kernelFunc:ch};var DC=class{constructor(e){this.variableNames=["Image"],this.outputShape=[];let t=e[2];this.outputShape=e,this.userCode=`
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void main() {
ivec4 coords = getOutputCoords();
int x = coords[2];
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int coordX = ${t} - x;
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float outputValue;
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if(coordX >= 0 && coordX < ${t}) {
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outputValue = getImage(coords[0], coords[1], coordX, coords[3]);
} else {
outputValue = getImage(coords[0], coords[1], coords[2], coords[3]);
}
setOutput(outputValue);
}
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`}};var vO={kernelName:li,backendName:"webgl",kernelFunc:({inputs:r,backend:e})=>{let{image:t}=r,o=e,n=new DC(t.shape);return o.runWebGLProgram(n,[t],t.dtype)}};var kO="return floor(x);",NZ=Ce({opSnippet:kO,packedOpSnippet:kO,cpuKernelImpl:dR}),CO={kernelName:sn,backendName:"webgl",kernelFunc:NZ};var SZ=`
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float s = sign(a) * sign(b);
int ia = round(a);
int ib = round(b);
if (ib != 0) {
// Windows (D3D) wants guaranteed non-zero int division at compile-time.
return float(idiv(ia, ib, s));
} else {
return NAN;
}
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`,TZ=`
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ivec4 ia = round(a);
ivec4 ib = round(b);
bvec4 cond = notEqual(ib, ivec4(0));
ivec4 result = ivec4(0);
vec4 s = sign(a) * sign(b);
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// Windows (D3D) wants guaranteed non-zero int division at compile-time.
if (cond[0]) {
result[0] = idiv(ia[0], ib[0], s[0]);
}
if (cond[1]) {
result[1] = idiv(ia[1], ib[1], s[1]);
}
if (cond[2]) {
result[2] = idiv(ia[2], ib[2], s[2]);
}
if (cond[3]) {
result[3] = idiv(ia[3], ib[3], s[3]);
}
return vec4(result);
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`,EZ=at({opSnippet:SZ,packedOpSnippet:TZ,dtype:"int32"}),IO={kernelName:an,backendName:"webgl",kernelFunc:EZ};var $C=class{constructor(e){this.variableNames=["A"];let t=zt(),[o,n]=e;this.outputShape=e,this.userCode=`
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void main() {
ivec3 coords = getOutputCoords();
int texR = coords[0];
int texC = coords[1];
int depth = coords[2];
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vec2 uv = (vec2(texC, texR) + halfCR) / vec2(${n}.0, ${o}.0);
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vec4 values = ${t.texture2D}(A, uv);
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float value;
if (depth == 0) {
value = values.r;
} else if (depth == 1) {
value = values.g;
} else if (depth == 2) {
value = values.b;
} else if (depth == 3) {
value = values.a;
}
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setOutput(floor(value * 255.0 + 0.5));
}
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`}};var RC=class{constructor(e){this.variableNames=["A"],this.packedInputs=!1,this.packedOutput=!0;let t=zt(),[o,n]=e;this.outputShape=e,this.userCode=`
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void main() {
ivec3 coords = getOutputCoords();
int texR = coords[0];
int texC = coords[1];
int depth = coords[2];
vec4 result = vec4(0.);
for(int row=0; row<=1; row++) {
for(int col=0; col<=1; col++) {
texC = coords[1] + row;
depth = coords[2] + col;
vec2 uv = (vec2(texC, texR) + halfCR) /
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vec2(${n}.0, ${o}.0);
vec4 values = ${t.texture2D}(A, uv);
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float value;
if (depth == 0) {
value = values.r;
} else if (depth == 1) {
value = values.g;
} else if (depth == 2) {
value = values.b;
} else if (depth == 3) {
value = values.a;
}
result[row * 2 + col] = floor(value * 255.0 + 0.5);
}
}
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${t.output} = result;
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}
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`}};var NO={kernelName:Oc,backendName:"webgl",kernelFunc:AZ},jp;function AZ(r){let{inputs:e,backend:t,attrs:o}=r,{pixels:n}=e,{numChannels:s}=o,a=typeof HTMLVideoElement!="undefined"&&n instanceof HTMLVideoElement,i=typeof HTMLImageElement!="undefined"&&n instanceof HTMLImageElement,l=typeof ImageBitmap!="undefined"&&n instanceof ImageBitmap,[u,c]=a?[n.videoWidth,n.videoHeight]:[n.width,n.height],p=[c,u],m=[c,u,s];(i||a||l)&&(jp==null&&(jp=document.createElement("canvas").getContext("2d")),jp.canvas.width=u,jp.canvas.height=c,jp.drawImage(n,0,0,u,c),n=jp.canvas);let f=t.makeTensorInfo(p,"int32");t.texData.get(f.dataId).usage=$r.PIXELS,t.gpgpu.uploadPixelDataToTexture(t.getTexture(f.dataId),n);let d=W().getBool("WEBGL_PACK")?new RC(m):new $C(m),h=t.runWebGLProgram(d,[f],"int32");return t.disposeData(f.dataId),h}function DZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s,bias:a,preluActivationWeights:i}=e,{strides:l,pad:u,dataFormat:c,dilations:p,dimRoundingMode:m,activation:f,leakyreluAlpha:d}=o,h=S.convertConv2DDataFormat(c),g=S.computeConv2DInfo(n.shape,s.shape,l,p,u,m,!1,h),x,b=[];if(g.filterHeight===1&&g.filterWidth===1&&g.dilationHeight===1&&g.dilationWidth===1&&g.strideHeight===1&&g.strideWidth===1&&(g.padInfo.type==="SAME"||g.padInfo.type==="VALID"))x=Vx({x:n,filter:s,convInfo:g,backend:t,bias:a,activation:f,preluActivationWeights:i,leakyreluAlpha:d});else if(W().getBool("WEBGL_CONV_IM2COL")&&n.shape[0]===1)x=Wx({x:n,filter:s,convInfo:g,backend:t,bias:a,activation:f,preluActivationWeights:i,leakyreluAlpha:d});else{let w=a!=null,C=i!=null,D=f==="leakyrelu",A=f?Dl(f,!1):null,F=new ah(g,w,A,C,D),M=[n,s];if(a&&M.push(a),i&&M.push(i),D){let z=t.makeTensorInfo([],"float32",y.createScalarValue(d,"float32"));M.push(z),b.push(z)}x=t.runWebGLProgram(F,M,"float32")}let _=me({inputs:{x},backend:t,attrs:{shape:g.outShape}});return b.push(x),b.forEach(w=>t.disposeIntermediateTensorInfo(w)),_}var SO={kernelName:ks,backendName:"webgl",kernelFunc:DZ};function $Z(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,filter:s,bias:a,preluActivationWeights:i}=e,{strides:l,pad:u,dilations:c,dimRoundingMode:p,activation:m,leakyreluAlpha:f}=o,d=[],h=c;h==null&&(h=[1,1]),y.assert(S.eitherStridesOrDilationsAreOne(l,h),()=>`Error in depthwiseConv2d: Either strides or dilations must be 1. Got strides ${l} and dilations '${h}'`);let g=S.computeConv2DInfo(n.shape,s.shape,l,h,u,p,!0),x=W().getBool("WEBGL_PACK_DEPTHWISECONV")&&g.strideWidth<=2&&g.outChannels/g.inChannels==1,b=m?Dl(m,x):null,_=[n,s],w=a!=null,C=i!=null,D=m==="leakyrelu";if(w&&_.push(a),C&&_.push(i),D){let M=t.makeTensorInfo([],"float32",y.createScalarValue(f,"float32"));_.push(M),d.push(M)}let A;x?A=new uh(g,w,b,C,D):A=new lh(g,w,b,C,D);let F=t.runWebGLProgram(A,_,"float32");return d.forEach(M=>t.disposeIntermediateTensorInfo(M)),F}var TO={kernelName:Cs,backendName:"webgl",kernelFunc:$Z};var FC=class{constructor(e,t,o){this.sliceDim=e,this.strides=t,this.variableNames=["x","indices"],this.outputShape=o;let n=ze(t.length),s=ze(o.length),a=this.sliceDim>1?"strides[j]":"strides";this.userCode=`
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${n} strides = ${n}(${this.strides});
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void main() {
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${s} coords = getOutputCoords();
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int flattenIndex = 0;
for (int j = 0; j < ${this.sliceDim}; j++) {
int index = round(getIndices(coords[0], j));
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flattenIndex += index * ${a};
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}
setOutput(getX(flattenIndex, coords[1]));
}
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`}};function RZ(r){let{inputs:e,backend:t}=r,{params:o,indices:n}=e,s=n.shape,a=s[s.length-1],[i,l,u,c]=S.prepareAndValidate(o,n),p=me({inputs:{x:n},backend:t,attrs:{shape:[l,a]}}),m=me({inputs:{x:o},backend:t,attrs:{shape:[y.sizeFromShape(o.shape)/u,u]}}),f=new FC(a,c,[l,u]),d=t.runWebGLProgram(f,[m,p],m.dtype),h=me({inputs:{x:d},backend:t,attrs:{shape:i}});return t.disposeIntermediateTensorInfo(p),t.disposeIntermediateTensorInfo(m),t.disposeIntermediateTensorInfo(d),h}var EO={kernelName:ui,backendName:"webgl",kernelFunc:RZ};var OC=class{constructor(e,t){this.variableNames=["A","indices"],this.outputShape=t,this.rank=t.length;let o=ze(this.rank),n=FZ(e,2);this.userCode=`
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void main() {
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${o} resRC = getOutputCoords();
setOutput(getA(${n}));
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}
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`}};function FZ(r,e){let t=["resRC.x","resRC.y","resRC.z","resRC.w"],o=[];for(let n=0;n<r.length;n++)n===2?o.push("int(getIndices(resRC.x, resRC.z))"):o.push(`${t[n]}`);return o.join()}function OZ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,indices:s}=e,{axis:a,batchDims:i}=o,l=y.parseAxisParam(a,n.shape)[0],u=S.segment_util.collectGatherOpShapeInfo(n,s,l,i),c=y.sizeFromShape(s.shape),p=[],m=me({inputs:{x:n},backend:t,attrs:{shape:[u.batchSize,u.outerSize,u.dimSize,u.sliceSize]}}),f=me({inputs:{x:s},backend:t,attrs:{shape:[u.batchSize,c/u.batchSize]}});p.push(m),p.push(f);let d=[u.batchSize,u.outerSize,c/u.batchSize,u.sliceSize];if(t.shouldExecuteOnCPU([n,s])||n.dtype==="string"){let b=t.bufferSync(f),_=t.bufferSync(m),w=hR(_,b,d);return p.forEach(C=>t.disposeIntermediateTensorInfo(C)),t.makeTensorInfo(u.outputShape,w.dtype,w.values)}let h=new OC(m.shape,d),g=t.runWebGLProgram(h,[m,f],m.dtype);p.push(g);let x=me({inputs:{x:g},backend:t,attrs:{shape:u.outputShape}});return p.forEach(b=>t.disposeIntermediateTensorInfo(b)),x}var AO={kernelName:ps,backendName:"webgl",kernelFunc:OZ};var PZ="return float(a > b);",MZ=`
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return vec4(greaterThan(a, b));
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`,LZ=at({opSnippet:PZ,packedOpSnippet:MZ,cpuKernelImpl:gR,dtype:"bool"}),DO={kernelName:ci,backendName:"webgl",kernelFunc:LZ};var zZ="return float(a >= b);",BZ=`
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return vec4(greaterThanEqual(a, b));
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`,VZ=at({opSnippet:zZ,packedOpSnippet:BZ,dtype:"bool"}),$O={kernelName:un,backendName:"webgl",kernelFunc:VZ};function WZ(r){let{inputs:e,backend:t}=r,{input:o}=e;return qx(o,!0,t)}var RO={kernelName:nu,backendName:"webgl",kernelFunc:WZ};var GZ="return float(!isnan(x) && !isinf(x));",UZ=Ce({opSnippet:GZ,dtype:"bool"}),FO={kernelName:pi,backendName:"webgl",kernelFunc:UZ};var jZ="return float(isinf(x));",qZ=Ce({opSnippet:jZ,dtype:"bool"}),OO={kernelName:mi,backendName:"webgl",kernelFunc:qZ};var HZ="return float(isnan(x));",KZ=Ce({opSnippet:HZ,dtype:"bool"}),PO={kernelName:fi,backendName:"webgl",kernelFunc:KZ};var XZ="return float(a < b);",YZ=`
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return vec4(lessThan(a, b));
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`,ZZ=at({opSnippet:XZ,packedOpSnippet:YZ,cpuKernelImpl:xR,dtype:"bool"}),MO={kernelName:di,backendName:"webgl",kernelFunc:ZZ};var JZ="return float(a <= b);",QZ=`
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return vec4(lessThanEqual(a, b));
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`,e9=at({opSnippet:JZ,packedOpSnippet:QZ,dtype:"bool"}),LO={kernelName:hi,backendName:"webgl",kernelFunc:e9};function t9(r){let{backend:e,attrs:t}=r,{start:o,stop:n,num:s}=t,a=yR(o,n,s);return e.makeTensorInfo([a.length],"float32",a)}var zO={kernelName:iu,backendName:"webgl",kernelFunc:t9};var r9=`if (x < 0.0) return NAN;
return log(x);`,o9=`
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vec4 result = log(x);
vec4 isNaN = vec4(lessThan(x, vec4(0.0)));
result.r = isNaN.r == 1.0 ? NAN : result.r;
result.g = isNaN.g == 1.0 ? NAN : result.g;
result.b = isNaN.b == 1.0 ? NAN : result.b;
result.a = isNaN.a == 1.0 ? NAN : result.a;
return result;
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`,n9=Ce({opSnippet:r9,packedOpSnippet:o9,cpuKernelImpl:bR}),BO={kernelName:pn,backendName:"webgl",kernelFunc:n9};var s9="return log(1.0 + x);",i9=Ce({opSnippet:s9}),VO={kernelName:gi,backendName:"webgl",kernelFunc:i9};var a9="return float(a >= 1.0 && b >= 1.0);",l9=`
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return vec4(
vec4(greaterThanEqual(a, vec4(1.0))) *
vec4(greaterThanEqual(b, vec4(1.0))));
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`,u9=at({opSnippet:a9,packedOpSnippet:l9,dtype:"bool"}),WO={kernelName:xi,backendName:"webgl",kernelFunc:u9};var c9="return float(!(x >= 1.0));",p9=Ce({opSnippet:c9}),GO={kernelName:Qa,backendName:"webgl",kernelFunc:p9};var m9="return float(a >= 1.0 || b >= 1.0);",f9=`
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return min(
vec4(greaterThanEqual(a, vec4(1.0))) +
vec4(greaterThanEqual(b, vec4(1.0))),
vec4(1.0));
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`,d9=at({opSnippet:m9,packedOpSnippet:f9,dtype:"bool"}),UO={kernelName:el,backendName:"webgl",kernelFunc:d9};var PC=class{constructor(e,t,o,n,s){this.variableNames=["x"],this.outputShape=[];let a=t,i=e[3]-1;this.outputShape=e;let l,u=`float(${o}) + float(${n}) * sum`;s===.5?l=`inversesqrt(${u})`:s===1?l=`1.0/(${u})`:l=`exp(log(${u}) * float(-${s}));`,this.userCode=`
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void main() {
ivec4 coords = getOutputCoords();
int b = coords[0];
int r = coords[1];
int c = coords[2];
int d = coords[3];
float x = getX(b, r, c, d);
float sum = 0.0;
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for (int j = -${a}; j <= ${a}; j++) {
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int idx = d + j;
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if (idx >= 0 && idx <= ${i}) {
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float z = getX(b, r, c, idx);
sum += z * z;
}
}
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float val = x * ${l};
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setOutput(val);
}
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`}};var MC=class{constructor(e,t,o,n,s){this.variableNames=["x"],this.outputShape=[],this.packedInputs=!0,this.packedOutput=!0;let a=t,i=e[3]-1;this.outputShape=e;let l,u=`float(${o}) + float(${n}) * sum`;s===.5?l=`inversesqrt(${u})`:s===1?l=`1.0/(${u})`:l=`exp(log(${u}) * float(-${s}));`,this.userCode=`
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void main() {
ivec4 coords = getOutputCoords();
int b = coords.x;
int r = coords.y;
int c = coords.z;
int d = coords.w;
bool hasNextCol = d < ${this.outputShape[3]};
bool hasNextRow = c < ${this.outputShape[2]};
vec4 sum = vec4(0.);
vec4 xFragAtOutputCoords = getX(b, r, c, d);
vec4 xAtOutputCoords = vec4(
getChannel(xFragAtOutputCoords, vec2(c, d)),
hasNextCol ?
getChannel(xFragAtOutputCoords, vec2(c, d + 1)) : 0.0,
hasNextRow ?
getChannel(xFragAtOutputCoords , vec2(c + 1, d)) : 0.0,
(hasNextRow && hasNextCol) ?
getChannel(xFragAtOutputCoords, vec2(c + 1, d + 1)) : 0.0
);
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int firstChannel = d - ${a};
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vec2 cache = vec2(0.);
if(firstChannel >= 0){
vec4 firstChannelFrag = getX(b, r, c, firstChannel);
cache.x = getChannel(firstChannelFrag, vec2(c, firstChannel));
if(hasNextRow){
cache.y = getChannel(firstChannelFrag, vec2(c + 1, firstChannel));
}
}
ivec2 depth = ivec2(d, d + 1);
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for (int j = - ${a}; j <= ${a}; j++) {
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ivec2 idx = depth + j;
bvec2 aboveLowerBound = greaterThanEqual(idx, ivec2(0));
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bvec2 belowUpperBound = lessThanEqual(idx, ivec2(${i}));
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bool depthInRange = aboveLowerBound.x && belowUpperBound.x;
bool depthPlusOneInRange = aboveLowerBound.y && belowUpperBound.y;
if(depthInRange || depthPlusOneInRange){
vec4 z = vec4(0.);
vec4 xFragAtCurrentDepth;
z.xz = cache.xy;
if(depthPlusOneInRange && hasNextCol){
xFragAtCurrentDepth = idx.y != d ?
getX(b, r, c, idx.y) : xFragAtOutputCoords;
z.y = getChannel(xFragAtCurrentDepth, vec2(c, idx.y));
if(hasNextRow){
z.w = getChannel(xFragAtCurrentDepth, vec2(c + 1, idx.y));
}
}
cache.xy = z.yw;
sum += z * z;
}
}
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vec4 result = xAtOutputCoords * ${l};
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setOutput(result);
}
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`}};var h9=r=>{let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{depthRadius:s,bias:a,alpha:i,beta:l}=o,u=W().getBool("WEBGL_PACK_NORMALIZATION")?new MC(n.shape,s,a,i,l):new PC(n.shape,s,a,i,l);return t.runWebGLProgram(u,[n],n.dtype)},jO={kernelName:ca,backendName:"webgl",kernelFunc:h9};var LC=class{constructor(e,t,o,n,s){this.variableNames=["inputImage","outputImage","dy"],this.outputShape=[],this.outputShape=e,this.depth=e[3],this.depthRadius=t,this.bias=o,this.alpha=n,this.beta=s,this.userCode=`
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void main() {
ivec4 coords = getOutputCoords();
int b = coords[0];
int r = coords[1];
int c = coords[2];
float result = 0.0;
for (int d = 0; d < ${this.depth}; ++d) {
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int depthBegin = int(max(0.0, float(d - ${t})));
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int depthEnd = int(min(float(${this.depth}),
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float(d + ${t} + 1)));
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const int MIN_DEPTH_BEGIN = 0;
const int MAX_DEPTH_END = ${this.depth};
float norm = 0.0;
for (int k = MIN_DEPTH_BEGIN; k < MAX_DEPTH_END; ++k) {
if (k < depthBegin){
continue;
}
else if (k >= depthBegin && k < depthEnd) {
norm += getInputImage(b, r, c, k) * getInputImage(b, r, c, k);
}
else {
break;
}
}
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norm = float(${n}) * norm + float(${o});
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for(int k = MIN_DEPTH_BEGIN; k < MAX_DEPTH_END; ++k){
if (k < depthBegin){
continue;
}
else if (k >= depthBegin && k < depthEnd){
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float dyi = -2.0 * float(${n})
* float(${s})
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* getInputImage(b ,r ,c, k) * getOutputImage(b, r, c, d)
/ norm;
if (k == d) {
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dyi += pow(norm, -1.0 * ${s});
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}
if (k == coords[3]) {
dyi *= getDy(b, r, c, d);
result += dyi;
}
}
else {
break;
}
}
}
setOutput(result);
}
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`}};var g9=r=>{let{inputs:e,backend:t,attrs:o}=r,{x:n,y:s,dy:a}=e,{depthRadius:i,bias:l,alpha:u,beta:c}=o,p=new LC(n.shape,i,l,u,c);return t.runWebGLProgram(p,[n,s,a],n.dtype)},qO={kernelName:au,backendName:"webgl",kernelFunc:g9};function HO(r,e,t,o){let n=y.sizeFromShape(e),a=y.sizeFromShape(r.shape)/n,i=me({inputs:{x:r},attrs:{shape:[a,n]},backend:o}),l=To(i,r.dtype,"max",o),u=me({inputs:{x:l},attrs:{shape:t},backend:o});return o.disposeIntermediateTensorInfo(i),o.disposeIntermediateTensorInfo(l),u}function zC(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{reductionIndices:s,keepDims:a}=o,i=n.shape.length,l=y.parseAxisParam(s,n.shape),u=l,c=S.getAxesPermutation(u,i),p=c!=null,m=t.shouldExecuteOnCPU([n]),f=n;if(p){if(m){let _=t.texData.get(f.dataId).values,w=new Array(i);for(let A=0;A<w.length;A++)w[A]=n.shape[c[A]];let C=Up(_,n.shape,n.dtype,c,w);f=t.makeTensorInfo(w,n.dtype);let D=t.texData.get(f.dataId);D.values=C}else f=$l(n,c,t);u=S.getInnerMostAxes(u.length,i)}S.assertAxesAreInnerMostDims("max",u,i);let[d,h]=S.computeOutAndReduceShapes(f.shape,u),g=d;a&&(g=S.expandShapeToKeepDim(d,l));let x;if(m){let _=t.texData.get(f.dataId).values,w=_R(_,y.sizeFromShape(h),g,n.dtype);x=t.makeTensorInfo(g,n.dtype);let C=t.texData.get(x.dataId);C.values=w}else x=HO(f,h,g,t);return p&&t.disposeIntermediateTensorInfo(f),x}var KO={kernelName:mn,backendName:"webgl",kernelFunc:zC};var x9=Fx+`
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return max(a, b);
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`,y9=`
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vec4 result = vec4(max(a, b));
vec4 isNaN = min(vec4(isnan(a)) + vec4(isnan(b)), vec4(1.0));
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`+Al+`
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return result;
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`,b9=at({opSnippet:x9,packedOpSnippet:y9,cpuKernelImpl:wR}),XO={kernelName:fn,backendName:"webgl",kernelFunc:b9};function _9(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e;Yi(n,"maxPool");let{filterSize:s,strides:a,pad:i,dimRoundingMode:l}=o,u=1;y.assert(S.eitherStridesOrDilationsAreOne(a,u),()=>`Error in maxPool: Either strides or dilations must be 1. Got strides ${a} and dilations '${u}'`);let c=S.computePool2DInfo(n.shape,s,a,u,i,l);if(c.filterWidth===1&&c.filterHeight===1&&y.arraysEqual(c.inShape,c.outShape))return Ht({inputs:{x:n},backend:t});let p=new Zi(c,"max",!1);return t.runWebGLProgram(p,[n],n.dtype)}var YO={kernelName:dn,backendName:"webgl",kernelFunc:_9};function w9(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{filterSize:s,strides:a,pad:i,dataFormat:l,dimRoundingMode:u}=o,c=[1,1,1],p=S.computePool3DInfo(n.shape,s,a,c,i,u,l),m=new pc(p,"max",!1);return t.runWebGLProgram(m,[n],n.dtype)}var ZO={kernelName:pa,backendName:"webgl",kernelFunc:w9};var BC=class{constructor(e){this.variableNames=["dy","maxPos"],this.outputShape=e.inShape;let t=e.strideHeight,o=e.strideWidth,n=e.dilationHeight,s=e.effectiveFilterHeight,a=e.effectiveFilterWidth,i=s-1-e.padInfo.top,l=a-1-e.padInfo.left,u=s*a-1;this.userCode=`
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const ivec2 pads = ivec2(${i}, ${l});
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void main() {
ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
ivec2 dyRCCorner = coords.yz - pads;
int dyRCorner = dyRCCorner.x;
int dyCCorner = dyRCCorner.y;
// Convolve dy(?, ?, d) with pos mask(:, :, d) to get dx(xR, xC, d).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wR = 0; wR < ${s};
wR += ${n}) {
float dyR = float(dyRCorner + wR) / ${t}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 || fract(dyR) > 0.0) {
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continue;
}
int idyR = int(dyR);
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for (int wC = 0; wC < ${a}; wC++) {
float dyC = float(dyCCorner + wC) / ${o}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
float dyValue = getDy(b, idyR, idyC, d);
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int maxPosValue = ${u} - int(getMaxPos(b, idyR, idyC, d));
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// Get the current value, check it against the value from the
// position matrix.
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int curPosValue = wR * ${a} + wC;
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float mask = float(maxPosValue == curPosValue ? 1.0 : 0.0);
dotProd += dyValue * mask;
}
}
setOutput(dotProd);
}
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`}},VC=class{constructor(e){this.variableNames=["dy","maxPos"],this.outputShape=e.inShape;let t=e.strideDepth,o=e.strideHeight,n=e.strideWidth,s=e.dilationDepth,a=e.dilationHeight,i=e.dilationWidth,l=e.effectiveFilterDepth,u=e.effectiveFilterHeight,c=e.effectiveFilterWidth,p=l-1-e.padInfo.front,m=u-1-e.padInfo.top,f=c-1-e.padInfo.left,d=l*u*c-1;this.userCode=`
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const ivec3 pads = ivec3(${p}, ${m}, ${f});
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void main() {
ivec5 coords = getOutputCoords();
int batch = coords.x;
int ch = coords.u;
ivec3 dyCorner = ivec3(coords.y, coords.z, coords.w) - pads;
int dyDCorner = dyCorner.x;
int dyRCorner = dyCorner.y;
int dyCCorner = dyCorner.z;
// Convolve dy(?, ?, ?, ch) with pos mask(:, :, :, d) to get
// dx(xD, xR, xC, ch).
// ? = to be determined. : = across all values in that axis.
float dotProd = 0.0;
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for (int wD = 0; wD < ${l};
wD += ${s}) {
float dyD = float(dyDCorner + wD) / ${t}.0;
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if (dyD < 0.0 || dyD >= ${e.outDepth}.0 || fract(dyD) > 0.0) {
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continue;
}
int idyD = int(dyD);
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for (int wR = 0; wR < ${u};
wR += ${a}) {
float dyR = float(dyRCorner + wR) / ${o}.0;
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if (dyR < 0.0 || dyR >= ${e.outHeight}.0 ||
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fract(dyR) > 0.0) {
continue;
}
int idyR = int(dyR);
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for (int wC = 0; wC < ${c};
wC += ${i}) {
float dyC = float(dyCCorner + wC) / ${n}.0;
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if (dyC < 0.0 || dyC >= ${e.outWidth}.0 ||
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fract(dyC) > 0.0) {
continue;
}
int idyC = int(dyC);
float dyValue = getDy(batch, idyD, idyR, idyC, ch);
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int maxPosValue = ${d} -
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int(getMaxPos(batch, idyD, idyR, idyC, ch));
// Get the current value, check it against the value from the
// position matrix.
int curPosValue =
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wD * ${u} * ${c} +
wR * ${c} + wC;
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float mask = float(maxPosValue == curPosValue ? 1.0 : 0.0);
dotProd += dyValue * mask;
}
}
}
setOutput(dotProd);
}
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`}};function v9(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,input:s}=e,a=s,{filterSize:i,strides:l,pad:u,dimRoundingMode:c}=o,p=[1,1,1],m=S.computePool3DInfo(a.shape,i,l,p,u,c),f=new pc(m,"max",!0),d=t.runWebGLProgram(f,[a],a.dtype),h=new VC(m),g=t.runWebGLProgram(h,[n,d],a.dtype);return t.disposeIntermediateTensorInfo(d),g}var JO={kernelName:uu,backendName:"webgl",kernelFunc:v9};function k9(r){let{inputs:e,backend:t,attrs:o}=r,{dy:n,input:s,output:a}=e,i=s;Yi([s,a],"maxPoolGrad");let{filterSize:l,strides:u,pad:c,dimRoundingMode:p}=o,m=S.computePool2DInfo(i.shape,l,u,1,c,p),f=!0,d=new Zi(m,"max",f),h=t.runWebGLProgram(d,[i],i.dtype),g=new BC(m),x=t.runWebGLProgram(g,[n,h],i.dtype);return t.disposeIntermediateTensorInfo(h),x}var QO={kernelName:lu,backendName:"webgl",kernelFunc:k9};function eP(r,e,t,o){let n=new Zi(t,"max",!1),s=o.runWebGLProgram(n,[r],"float32");n=new Zi(t,"max",!0,!0,e);let a=o.runWebGLProgram(n,[r],"float32");return[s,a]}var tP={kernelName:cu,backendName:"webgl",kernelFunc:({inputs:r,attrs:e,backend:t})=>{let{x:o}=r,{filterSize:n,strides:s,pad:a,includeBatchInIndex:i}=e,l=t;y.assert(o.shape.length===4,()=>`Error in maxPool: input must be rank 4 but got rank ${o.shape.length}.`);let u=[1,1];y.assert(S.eitherStridesOrDilationsAreOne(s,u),()=>`Error in maxPool: Either strides or dilations must be 1. Got strides ${s} and dilations '${u}'`);let c=S.computePool2DInfo(o.shape,n,s,u,a),[p,m]=eP(o,i,c,l);return[p,m]}};function rP(r,e,t,o){let n=y.sizeFromShape(e),a=y.sizeFromShape(r.shape)/n,i=me({inputs:{x:r},attrs:{shape:[a,n]},backend:o}),l=To(i,"float32","mean",o),u=me({inputs:{x:l},attrs:{shape:t},backend:o});return o.disposeIntermediateTensorInfo(i),o.disposeIntermediateTensorInfo(l),u}var oP={kernelName:hn,backendName:"webgl",kernelFunc:({inputs:r,attrs:e,backend:t})=>{let{x:o}=r,{keepDims:n,axis:s}=e,a=t,i=o.shape.length,l=y.parseAxisParam(s,o.shape),u=l,c=S.getAxesPermutation(u,i),p=c!=null,m=a.shouldExecuteOnCPU([o]),f=[],d=o;if(p){if(m){let w=a.texData.get(d.dataId).values,C=new Array(i);for(let F=0;F<C.length;F++)C[F]=o.shape[c[F]];let D=Up(w,o.shape,o.dtype,c,C);d=a.makeTensorInfo(C,o.dtype);let A=a.texData.get(d.dataId);A.values=D}else d=$l(o,c,a);f.push(d),u=S.getInnerMostAxes(u.length,i)}S.assertAxesAreInnerMostDims("sum",u,i);let[h,g]=S.computeOutAndReduceShapes(d.shape,u),x=h;n&&(x=S.expandShapeToKeepDim(h,l));let b=rP(d,g,x,a);for(let _ of f)a.disposeIntermediateTensorInfo(_);return b}};function C9(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,keepDims:a}=o,i=n.shape.length,l=y.parseAxisParam(s,n.shape),u=l,c=S.getAxesPermutation(u,i),p=n;c!=null&&(p=Bt({inputs:{x:n},backend:t,attrs:{perm:c}}),u=S.getInnerMostAxes(u.length,n.shape.length)),S.assertAxesAreInnerMostDims("min",u,i);let[m,f]=S.computeOutAndReduceShapes(p.shape,u),d=y.sizeFromShape(f),h=me({inputs:{x:p},backend:t,attrs:{shape:[-1,d]}}),g=To(h,h.dtype,"min",t),x;if(a){let b=S.expandShapeToKeepDim(m,l);x=me({inputs:{x:g},backend:t,attrs:{shape:b}})}else x=me({inputs:{x:g},backend:t,attrs:{shape:m}});return t.disposeIntermediateTensorInfo(h),t.disposeIntermediateTensorInfo(g),c!=null&&t.disposeIntermediateTensorInfo(p),x}var nP={kernelName:gn,backendName:"webgl",kernelFunc:C9};var I9=Fx+`
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return min(a, b);
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`,N9=`
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vec4 result = vec4(min(a, b));
vec4 isNaN = min(vec4(isnan(a)) + vec4(isnan(b)), vec4(1.0));
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`+Al+`
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return result;
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`,S9=at({opSnippet:I9,packedOpSnippet:N9,cpuKernelImpl:vR}),sP={kernelName:xn,backendName:"webgl",kernelFunc:S9};var WC=class{constructor(e,t,o){this.variableNames=["x"],this.outputShape=t.map((c,p)=>c[0]+e[p]+c[1]);let n=e.length,s=ze(n),a=t.map(c=>c[0]).join(","),i=t.map((c,p)=>c[0]+e[p]).join(","),l=["coords[0]","coords[1]","coords[2]","coords[3]"].slice(0,n),u=o==="reflect"?0:1;if(n===1){this.userCode=`
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int start = ${a};
int end = ${i};
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void main() {
int outC = getOutputCoords();
if (outC < start) {
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outC = start * 2 - outC - ${u};
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} else if(outC >= end) {
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outC = (end - 1) * 2 - outC + ${u};
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}
setOutput(getX(outC - start));
}
`;return}this.userCode=`
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${s} start = ${s}(${a});
${s} end = ${s}(${i});
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void main() {
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${s} outC = getOutputCoords();
for (int i = 0; i < ${n}; i++) {
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if (outC[i] < start[i]) {
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outC[i] = start[i] * 2 - outC[i] - ${u};
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} else if(outC[i] >= end[i]) {
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outC[i] = (end[i] - 1) * 2 - outC[i] + ${u};
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}
}
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${s} coords = outC - start;
setOutput(getX(${l}));
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}
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`}};var GC=class{constructor(e,t,o){this.variableNames=["x"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=t.map((d,h)=>d[0]+e[h]+d[1]);let n=e.length,s=ze(n),a=t.map(d=>d[0]).join(","),i=t.map((d,h)=>d[0]+e[h]).join(","),l=qt("rc",n),u=qt("source",n),c=`${l[n-1]} < ${this.outputShape[n-1]}`,p=n===1?"source":`vec2(${u.slice(-2).join()})`,m=o==="reflect"?0:1,f="";if(n===1){let d=`
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${s} source = rc;
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if (source < start) {
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source = start * 2 - source - ${m};
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} else if (source >= end) {
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source = (end - 1) * 2 - source + ${m};
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}
source -= start;
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`;f=`
${s} rc = outputLoc;
${d}
result[0] = getChannel(getX(${u.join()}), ${p});
${l[n-1]} += 1;
if(${c}) {
${d}
result[1] = getChannel(getX(${u.join()}), ${p});
}
`}else{let d=`
${s} source = rc;
${s} lt = ${s}(lessThan(source, start));
${s} gte = ${s}(greaterThanEqual(source, end));
${s} orig = 1 - (lt + gte);
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source = orig * source +
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lt * (start * 2 - source - ${m}) +
gte * ((end - 1) * 2 - source + ${m});
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source -= start;
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`;f=`
${s} rc = outputLoc;
${d}
result[0] = getChannel(getX(${u.join()}), ${p});
${l[n-1]} += 1;
if(${c}) {
${d}
result[1] = getChannel(getX(${u.join()}), ${p});
}
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rc = outputLoc;
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${l[n-2]} += 1;
if(${l[n-2]} < ${this.outputShape[n-2]}) {
${d}
result[2] = getChannel(getX(${u.join()}), ${p});
${l[n-1]} += 1;
if(${c}) {
${d}
result[3] = getChannel(getX(${u.join()}), ${p});
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}
}
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`}this.userCode=`
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const ${s} start = ${s}(${a});
const ${s} end = ${s}(${i});
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void main() {
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${s} outputLoc = getOutputCoords();
vec4 result = vec4(0.);
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${f}
setOutput(result);
}
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`}};var T9=({inputs:r,backend:e,attrs:t})=>{let{x:o}=r,{paddings:n,mode:s}=t,a=W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")?new GC(o.shape,n,s):new WC(o.shape,n,s);return e.runWebGLProgram(a,[o],o.dtype)},iP={kernelName:ma,backendName:"webgl",kernelFunc:T9};var E9=`if (b == 0.0) return NAN;
return mod(a, b);`,A9=`
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vec4 result = mod(a, b);
vec4 isNaN = vec4(equal(b, vec4(0.0)));
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`+Al+`
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return result;
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`,D9=at({opSnippet:E9,packedOpSnippet:A9}),aP={kernelName:yi,backendName:"webgl",kernelFunc:D9};var UC=class{constructor(e,t,o){this.variableNames=["probs"],this.outputShape=[e,o],this.userCode=`
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uniform float seed;
void main() {
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ivec2 coords = getOutputCoords();
int batch = coords[0];
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float r = random(seed);
float cdf = 0.0;
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for (int i = 0; i < ${t-1}; i++) {
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cdf += getProbs(batch, i);
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if (r < cdf) {
setOutput(float(i));
return;
}
}
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// If no other event happened, last event happened.
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setOutput(float(${t-1}));
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}
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`}getCustomSetupFunc(e){return(t,o)=>{this.seedLoc==null&&(this.seedLoc=t.getUniformLocation(o,"seed")),t.gl.uniform1f(this.seedLoc,e)}}};var $9=`
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if (a == b) {
return 1.0;
};
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return a / b;`,R9=`
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// vec4 one = vec4(equal(a, b));
// return one + (vec4(1.0) - one) * a / b;
vec4 result = a / b;
if(a.x == b.x) {
result.x = 1.;
}
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if(a.y == b.y) {
result.y = 1.;
}
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if(a.z == b.z) {
result.z = 1.;
}
if(a.w == b.w) {
result.w = 1.;
}
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return result;
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`,jC=at({opSnippet:$9,packedOpSnippet:R9,checkOutOfBounds:!0}),lP={kernelName:on,backendName:"webgl",kernelFunc:jC};var uP="return a - b;",qC=at({opSnippet:uP,packedOpSnippet:uP,supportsComplex:!0,cpuKernelImpl:AR}),cP={kernelName:On,backendName:"webgl",kernelFunc:qC};function HC(r){let{inputs:e,backend:t,attrs:o}=r,{logits:n}=e,{dim:s}=o,a=y.parseAxisParam([s],n.shape),i=zC({inputs:{x:n},backend:t,attrs:{reductionIndices:a,keepDims:!1}}),l=S.expandShapeToKeepDim(i.shape,a),u=me({inputs:{x:i},backend:t,attrs:{shape:l}}),c=qC({inputs:{a:n,b:u},backend:t}),p=EC({inputs:{x:c},backend:t}),m=ih({inputs:{x:p},backend:t,attrs:{axis:a,keepDims:!1}}),f=me({inputs:{x:m},backend:t,attrs:{shape:l}}),d=jC({inputs:{a:p,b:f},backend:t});return t.disposeIntermediateTensorInfo(i),t.disposeIntermediateTensorInfo(u),t.disposeIntermediateTensorInfo(c),t.disposeIntermediateTensorInfo(p),t.disposeIntermediateTensorInfo(m),t.disposeIntermediateTensorInfo(f),d}var pP={kernelName:Rn,backendName:"webgl",kernelFunc:HC};function F9(r){let{inputs:e,backend:t,attrs:o}=r,{logits:n}=e,{numSamples:s,seed:a,normalized:i}=o,l=i?n:HC({inputs:{logits:n},backend:t,attrs:{dim:n.shape.length-1}}),u=l.shape[0],c=l.shape[1],p=new UC(u,c,s),m=p.getCustomSetupFunc(a),f=t.runWebGLProgram(p,[l],"int32",m);return i||t.disposeIntermediateTensorInfo(l),f}var mP={kernelName:pu,backendName:"webgl",kernelFunc:F9};var fP="return -x;";function O9(r){let{inputs:e,backend:t}=r,{x:o}=e;if(t.shouldExecuteOnCPU([o])){let s=t.texData.get(o.dataId),[a,i]=CR(s.values,o.shape,o.dtype);return t.makeTensorInfo(i,o.dtype,a)}let n;return W().getBool("WEBGL_PACK_UNARY_OPERATIONS")?n=new Vs(o.shape,fP):n=new mo(o.shape,fP),t.runWebGLProgram(n,[o],o.dtype)}var dP={kernelName:fs,backendName:"webgl",kernelFunc:O9};var P9=Ar.nonMaxSuppressionV3Impl;function M9(r){S.warn("tf.nonMaxSuppression() in webgl locks the UI thread. Call tf.nonMaxSuppressionAsync() instead");let{inputs:e,backend:t,attrs:o}=r,{boxes:n,scores:s}=e,{maxOutputSize:a,iouThreshold:i,scoreThreshold:l}=o,u=t.readSync(n.dataId),c=t.readSync(s.dataId),{selectedIndices:p}=P9(u,c,a,i,l);return t.makeTensorInfo([p.length],"int32",new Int32Array(p))}var hP={kernelName:_i,backendName:"webgl",kernelFunc:M9};var L9=Ar.nonMaxSuppressionV4Impl;function z9(r){S.warn("tf.nonMaxSuppression() in webgl locks the UI thread. Call tf.nonMaxSuppressionAsync() instead");let{inputs:e,backend:t,attrs:o}=r,{boxes:n,scores:s}=e,{maxOutputSize:a,iouThreshold:i,scoreThreshold:l,padToMaxOutputSize:u}=o,c=t.readSync(n.dataId),p=t.readSync(s.dataId),{selectedIndices:m,validOutputs:f}=L9(c,p,a,i,l,u);return[t.makeTensorInfo([m.length],"int32",new Int32Array(m)),t.makeTensorInfo([],"int32",new Int32Array([f]))]}var gP={kernelName:wi,backendName:"webgl",kernelFunc:z9};var B9=Ar.nonMaxSuppressionV5Impl;function V9(r){S.warn("tf.nonMaxSuppression() in webgl locks the UI thread. Call tf.nonMaxSuppressionAsync() instead");let{inputs:e,backend:t,attrs:o}=r,{boxes:n,scores:s}=e,{maxOutputSize:a,iouThreshold:i,scoreThreshold:l,softNmsSigma:u}=o,c=t.readSync(n.dataId),p=t.readSync(s.dataId),m=a,f=i,d=l,h=u,{selectedIndices:g,selectedScores:x}=B9(c,p,m,f,d,h);return[t.makeTensorInfo([g.length],"int32",new Int32Array(g)),t.makeTensorInfo([x.length],"float32",new Float32Array(x))]}var xP={kernelName:vi,backendName:"webgl",kernelFunc:V9};var KC=class{constructor(e,t,o,n){this.variableNames=["indices"],this.outputShape=[e,t],this.userCode=`
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void main() {
ivec2 coords = getOutputCoords();
int index = round(getIndices(coords.x));
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setOutput(mix(float(${n}), float(${o}),
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float(index == coords.y)));
}
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`}};var W9=r=>{let{inputs:e,backend:t,attrs:o}=r,{indices:n}=e,{depth:s,onValue:a,offValue:i}=o,l=y.sizeFromShape(n.shape),u=new KC(l,s,a,i),c=me({inputs:{x:n},backend:t,attrs:{shape:[l]}}),p=t.runWebGLProgram(u,[c],n.dtype);t.disposeIntermediateTensorInfo(c);let m=[...n.shape,s],f=me({inputs:{x:p},backend:t,attrs:{shape:m}});return t.disposeIntermediateTensorInfo(p),f},yP={kernelName:bn,backendName:"webgl",kernelFunc:W9};function ph(r){let{inputs:e,backend:t}=r,{x:o}=e;if(o.dtype==="complex64"){let n=Ha({inputs:{input:o},backend:t}),s=ph({inputs:{x:n},backend:t}),a=mc({inputs:{input:o},backend:t}),i=ph({inputs:{x:a},backend:t}),l=fo({inputs:{real:s,imag:i},backend:t});return t.disposeIntermediateTensorInfo(n),t.disposeIntermediateTensorInfo(s),t.disposeIntermediateTensorInfo(a),t.disposeIntermediateTensorInfo(i),l}else return ch({attrs:{shape:o.shape,dtype:o.dtype,value:o.dtype==="string"?"":0},backend:t})}var bP={kernelName:ws,backendName:"webgl",kernelFunc:ph};function _P(r){let{inputs:e,backend:t}=r,{x:o}=e;if(o.dtype==="string")throw new Error("onesLike is not supported under string dtype");if(o.dtype==="complex64"){let n=Ha({inputs:{input:o},backend:t}),s=_P({inputs:{x:n},backend:t}),a=mc({inputs:{input:o},backend:t}),i=ph({inputs:{x:a},backend:t}),l=fo({inputs:{real:s,imag:i},backend:t});return t.disposeIntermediateTensorInfo(n),t.disposeIntermediateTensorInfo(s),t.disposeIntermediateTensorInfo(a),t.disposeIntermediateTensorInfo(i),l}else return ch({attrs:{shape:o.shape,dtype:o.dtype,value:1},backend:t})}var wP={kernelName:ds,backendName:"webgl",kernelFunc:_P};function G9(r){let{inputs:e,backend:t,attrs:o}=r,{axis:n}=o;if(e.length===1)return Ux({inputs:{input:e[0]},backend:t,attrs:{dim:n}});let s=e[0].shape,a=e[0].dtype;e.forEach(c=>{y.assertShapesMatch(s,c.shape,"All tensors passed to stack must have matching shapes"),y.assert(a===c.dtype,()=>"All tensors passed to stack must have matching dtypes")});let i=[],l=e.map(c=>{let p=Ux({inputs:{input:c},backend:t,attrs:{dim:n}});return i.push(p),p}),u=gC({inputs:l,backend:t,attrs:{axis:n}});return i.forEach(c=>t.disposeIntermediateTensorInfo(c)),u}var vP={kernelName:hs,backendName:"webgl",kernelFunc:G9};var XC=class{constructor(e,t,o){this.variableNames=["x"],this.outputShape=t.map((u,c)=>u[0]+e[c]+u[1]);let n=e.length,s=ze(n),a=t.map(u=>u[0]).join(","),i=t.map((u,c)=>u[0]+e[c]).join(","),l=["coords[0]","coords[1]","coords[2]","coords[3]"].slice(0,n);if(n===1){this.userCode=`
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int start = ${a};
int end = ${i};
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void main() {
int outC = getOutputCoords();
if (outC < start || outC >= end) {
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setOutput(float(${o}));
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} else {
setOutput(getX(outC - start));
}
}
`;return}this.userCode=`
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${s} start = ${s}(${a});
${s} end = ${s}(${i});
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void main() {
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${s} outC = getOutputCoords();
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if (any(lessThan(outC, start)) || any(greaterThanEqual(outC, end))) {
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setOutput(float(${o}));
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} else {
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${s} coords = outC - start;
setOutput(getX(${l}));
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}
}
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`}};var YC=class{constructor(e,t,o){this.variableNames=["x"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=t.map((h,g)=>h[0]+e[g]+h[1]);let n=e.length,s=ze(n),a=t.map(h=>h[0]).join(","),i=t.map((h,g)=>h[0]+e[g]).join(","),l=qt("rc",n),u=qt("source",n),c=`${l[n-1]} < ${this.outputShape[n-1]}`,p=n===1?"source":`vec2(${u.slice(-2).join()})`,m=[`${s} rc = outputLoc;`,`${l[n-1]} += 1;
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if(${c}) {
`,n===1?"":`}
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rc = outputLoc;
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${l[n-2]} += 1;
if(${l[n-2]} < ${this.outputShape[n-2]}) {`,n===1?"":` ${l[n-1]} += 1;
if(${c}) {`],f=n===1?"rc < start || rc >= end":"any(lessThan(rc, start)) || any(greaterThanEqual(rc, end))",d="";for(let h=0,g=n===1?2:4;h<g;h++)d+=`
${m[h]}
if (${f}) {
result[${h}] = float(${o});
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} else {
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${s} source = rc - start;
result[${h}] = getChannel(getX(${u.join()}), ${p});
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}
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`;d+=n===1?"} ":"}}",this.userCode=`
const ${s} start = ${s}(${a});
const ${s} end = ${s}(${i});
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void main() {
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${s} outputLoc = getOutputCoords();
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vec4 result = vec4(0.);
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${d}
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setOutput(result);
}
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`}};var ZC=r=>{let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{paddings:s,constantValue:a}=o,i=W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")?new YC(n.shape,s,a):new XC(n.shape,s,a);return t.runWebGLProgram(i,[n],n.dtype)},kP={kernelName:_n,backendName:"webgl",kernelFunc:ZC};var U9=`
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if(a < 0.0 && floor(b) < b){
return NAN;
}
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if (b == 0.0) {
return 1.0;
}
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return (round(mod(b, 2.0)) != 1) ?
pow(abs(a), b) : sign(a) * pow(abs(a), b);
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`,j9=`
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// isModRound1 has 1 for components with round(mod(b, 2.0)) == 1, 0 otherwise.
vec4 isModRound1 = vec4(equal(round(mod(b, 2.0)), ivec4(1)));
vec4 multiplier = sign(a) * isModRound1 + (vec4(1.0) - isModRound1);
vec4 result = multiplier * pow(abs(a), b);
// Ensure that a^0 = 1, including 0^0 = 1 as this correspond to TF and JS
bvec4 isExpZero = equal(b, vec4(0.0));
result.r = isExpZero.r ? 1.0 : result.r;
result.g = isExpZero.g ? 1.0 : result.g;
result.b = isExpZero.b ? 1.0 : result.b;
result.a = isExpZero.a ? 1.0 : result.a;
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vec4 isNaN = vec4(lessThan(a, vec4(0.0))) * vec4(lessThan(floor(b), b));
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`+Al+`
return result;
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`,q9=at({opSnippet:U9,packedOpSnippet:j9}),CP={kernelName:wn,backendName:"webgl",kernelFunc:q9};function H9(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{axis:s,keepDims:a}=o,i=n.shape.length,l=[],u=y.parseAxisParam(s,n.shape),c=u,p=S.getAxesPermutation(c,i),m=n;p!=null&&(m=Bt({inputs:{x:n},backend:t,attrs:{perm:p}}),c=S.getInnerMostAxes(c.length,i),l.push(m)),S.assertAxesAreInnerMostDims("prod",c,i);let f;if(t.shouldExecuteOnCPU([m])){let d=t.texData.get(m.dataId).values,{outVals:h,outShape:g,outDtype:x}=IR(m.shape,m.dtype,d,c);f=t.makeTensorInfo(g,x,h)}else{let[d,h]=S.computeOutAndReduceShapes(m.shape,c),g=y.sizeFromShape(h),x=me({inputs:{x:m},backend:t,attrs:{shape:[-1,g]}}),b=xu(n.dtype),_=To(x,b,"prod",t);f=me({inputs:{x:_},backend:t,attrs:{shape:d}}),l.push(x),l.push(_)}if(a){l.push(f);let d=S.expandShapeToKeepDim(f.shape,u);f=me({inputs:{x:f},backend:t,attrs:{shape:d}})}return l.forEach(d=>t.disposeIntermediateTensorInfo(d)),f}var IP={kernelName:ki,backendName:"webgl",kernelFunc:H9};var JC=r=>{let{backend:e,attrs:t}=r,{start:o,stop:n,step:s,dtype:a}=t,i=NR(o,n,s,a);return e.makeTensorInfo([i.length],a,i)},NP={kernelName:fa,backendName:"webgl",kernelFunc:JC};var K9="return 1.0 / x;",X9=Ce({opSnippet:K9}),SP={kernelName:Ci,backendName:"webgl",kernelFunc:X9};var Y9=xr+`
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return (x < 0.0) ? 0.0 : x;
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`,Z9=`
vec4 result = x * vec4(greaterThanEqual(x, vec4(0.0)));
bvec4 isNaN = isnan(x);
result.r = isNaN.r ? x.r : result.r;
result.g = isNaN.g ? x.g : result.g;
result.b = isNaN.b ? x.b : result.b;
result.a = isNaN.a ? x.a : result.a;
return result;
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`,J9=Ce({opSnippet:Y9,packedOpSnippet:Z9}),TP={kernelName:kn,backendName:"webgl",kernelFunc:J9};var Q9=xr+`
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return (x < 0.0) ? 0.0 : min(6.0, x);
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`,eJ=`
vec4 result = min(x, vec4(6.)) * vec4(greaterThanEqual(x, vec4(0.0)));
bvec4 isNaN = isnan(x);
result.r = isNaN.r ? x.r : result.r;
result.g = isNaN.g ? x.g : result.g;
result.b = isNaN.b ? x.b : result.b;
result.a = isNaN.a ? x.a : result.a;
return result;
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`,tJ=Ce({opSnippet:Q9,packedOpSnippet:eJ}),EP={kernelName:In,backendName:"webgl",kernelFunc:tJ};var QC=class{constructor(e,t,o,n,s){this.variableNames=["A"],this.outputShape=[];let[a,i,l,u]=e;this.outputShape=[a,t,o,u];let c=[n&&t>1?i-1:i,n&&o>1?l-1:l],p=[n&&t>1?t-1:t,n&&o>1?o-1:o],m;s?m="(vec2(yRC) + vec2(0.5)) * effectiveInputOverOutputRatioRC - vec2(0.5)":m="vec2(yRC) * effectiveInputOverOutputRatioRC",this.userCode=`
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const vec2 effectiveInputOverOutputRatioRC = vec2(
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${c[0]/p[0]},
${c[1]/p[1]});
const vec2 inputShapeRC = vec2(${i}.0, ${l}.0);
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void main() {
ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
ivec2 yRC = coords.yz;
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// Fractional source index.
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vec2 sourceFracIndexRC = ${m};
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// Compute the four integer indices.
ivec2 sourceFloorRC = ivec2(max(sourceFracIndexRC, vec2(0.0)));
ivec2 sourceCeilRC = ivec2(
min(inputShapeRC - 1.0, ceil(sourceFracIndexRC)));
float topLeft = getA(b, sourceFloorRC.x, sourceFloorRC.y, d);
float bottomLeft = getA(b, sourceCeilRC.x, sourceFloorRC.y, d);
float topRight = getA(b, sourceFloorRC.x, sourceCeilRC.y, d);
float bottomRight = getA(b, sourceCeilRC.x, sourceCeilRC.y, d);
vec2 fracRC = sourceFracIndexRC - vec2(sourceFloorRC);
float top = topLeft + (topRight - topLeft) * fracRC.y;
float bottom = bottomLeft + (bottomRight - bottomLeft) * fracRC.y;
float newValue = top + (bottom - top) * fracRC.x;
setOutput(newValue);
}
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`}};var eI=class{constructor(e,t,o,n,s){this.variableNames=["A"],this.packedInputs=!0,this.packedOutput=!0,this.outputShape=[];let[a,i,l,u]=e;this.outputShape=[a,t,o,u];let c=[n&&t>1?i-1:i,n&&o>1?l-1:l],p=[n&&t>1?t-1:t,n&&o>1?o-1:o],m;s?m="(vec3(yRC) + vec3(0.5)) * effectiveInputOverOutputRatioRC - vec3(0.5)":m="vec3(yRC) * effectiveInputOverOutputRatioRC",this.userCode=`
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const vec3 effectiveInputOverOutputRatioRC = vec3(
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${c[0]/p[0]},
${c[1]/p[1]},
${c[1]/p[1]});
const vec3 inputShapeRC = vec3(${i}.0, ${l}.0,
${l}.0);
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float getAValue(int b, int r, int c, int d) {
return getChannel(getA(b, r, c, d), vec2(c, d));
}
void main() {
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ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
// Calculate values for next column in yRC.z.
ivec3 yRC = coords.yzz + ivec3(0, 0, 1);
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// Fractional source index.
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vec3 sourceFracIndexRC = ${m};
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// Compute the four integer indices.
ivec3 sourceFloorRC = ivec3(max(sourceFracIndexRC, vec3(0.0)));
ivec3 sourceCeilRC = ivec3(
min(inputShapeRC - 1.0, ceil(sourceFracIndexRC)));
// Should we calculate next column and row elements in 2x2 packed cell.
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bool hasNextCol = d < ${u-1};
bool hasNextRow = coords.z < ${o-1};
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// In parallel, construct four corners for all four components in
// packed 2x2 cell.
vec4 topLeft = vec4(
getAValue(b, sourceFloorRC.x, sourceFloorRC.y, d),
hasNextCol ? getAValue(b, sourceFloorRC.x, sourceFloorRC.y, d + 1)
: 0.0,
hasNextRow ? getAValue(b, sourceFloorRC.x, sourceFloorRC.z, d)
: 0.0,
(hasNextRow && hasNextCol) ?
getAValue(b, sourceFloorRC.x, sourceFloorRC.z, d + 1) : 0.0);
vec4 bottomLeft = vec4(
getAValue(b, sourceCeilRC.x, sourceFloorRC.y, d),
hasNextCol ? getAValue(b, sourceCeilRC.x, sourceFloorRC.y, d + 1)
: 0.0,
hasNextRow ? getAValue(b, sourceCeilRC.x, sourceFloorRC.z, d)
: 0.0,
(hasNextRow && hasNextCol) ?
getAValue(b, sourceCeilRC.x, sourceFloorRC.z, d + 1) : 0.0);
vec4 topRight = vec4(
getAValue(b, sourceFloorRC.x, sourceCeilRC.y, d),
hasNextCol ? getAValue(b, sourceFloorRC.x, sourceCeilRC.y, d + 1)
: 0.0,
hasNextRow ? getAValue(b, sourceFloorRC.x, sourceCeilRC.z, d)
: 0.0,
(hasNextRow && hasNextCol) ?
getAValue(b, sourceFloorRC.x, sourceCeilRC.z, d + 1) : 0.0);
vec4 bottomRight = vec4(
getAValue(b, sourceCeilRC.x, sourceCeilRC.y, d),
hasNextCol ? getAValue(b, sourceCeilRC.x, sourceCeilRC.y, d + 1)
: 0.0,
hasNextRow ? getAValue(b, sourceCeilRC.x, sourceCeilRC.z, d)
: 0.0,
(hasNextRow && hasNextCol) ?
getAValue(b, sourceCeilRC.x, sourceCeilRC.z, d + 1) : 0.0);
vec3 fracRC = sourceFracIndexRC - vec3(sourceFloorRC);
vec4 top = mix(topLeft, topRight, fracRC.yyzz);
vec4 bottom = mix(bottomLeft, bottomRight, fracRC.yyzz);
vec4 newValue = mix(top, bottom, fracRC.x);
setOutput(newValue);
}
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`}};function rJ(r){let{inputs:e,backend:t,attrs:o}=r,{images:n}=e,{alignCorners:s,halfPixelCenters:a,size:i}=o,[l,u]=i,c=W().getBool("WEBGL_PACK_IMAGE_OPERATIONS")?new eI(n.shape,l,u,s,a):new QC(n.shape,l,u,s,a);return t.runWebGLProgram(c,[n],"float32")}var AP={kernelName:Cn,backendName:"webgl",kernelFunc:rJ};var tI=class{constructor(e,t,o){this.variableNames=["dy"],this.outputShape=[],this.outputShape=t;let[,n,s]=t,[,a,i]=e,l=[o&&a>1?n-1:n,o&&i>1?s-1:s],u=[o&&a>1?a-1:a,o&&i>1?i-1:i],c=l[0]/u[0],p=l[1]/u[1],m=1/c,f=1/p,d=Math.ceil(m)*2+2,h=Math.ceil(f)*2+2;this.userCode=`
void main() {
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ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
int r = coords[1];
int c = coords[2];
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float accumulator = 0.0;
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const float heightScale = float(${c});
const float widthScale = float(${p});
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const float invHeightScale = float(${m});
const float invWidthScale = float(${f});
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const int winHeight = int(${d});
const int winWidth = int(${h});
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// Compute bounds for where in dy we will look
float startRLerp = floor(float(r) * invHeightScale);
int startDyR = int(startRLerp - float(winHeight / 2));
float startCLerp = floor(float(c) * invWidthScale);
int startDyC = int(startCLerp - float(winWidth / 2));
// Loop over dy
for (int dyROffset = 0; dyROffset < winHeight; dyROffset++) {
int dyR = dyROffset + startDyR;
// Guard against the window exceeding the bounds of dy
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if (dyR < 0 || dyR >= ${a}) {
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continue;
}
for (int dyCOffset = 0; dyCOffset < winWidth; dyCOffset++) {
int dyC = dyCOffset + startDyC;
// Guard against the window exceeding the bounds of dy
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if (dyC < 0 || dyC >= ${i}) {
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continue;
}
float dxR = float(dyR) * heightScale;
int topDxRIndex = int(floor(dxR));
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int bottomDxRIndex = int(min(ceil(dxR), ${n-1}.0));
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float dxRLerp = dxR - float(topDxRIndex);
float inverseDxRLerp = 1.0 - dxRLerp;
float dxC = float(dyC) * widthScale;
int leftDxCIndex = int(floor(dxC));
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int rightDxCIndex = int(min(ceil(dxC), ${s-1}.0));
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float dxCLerp = dxC - float(leftDxCIndex);
float inverseDxCLerp = 1.0 - dxCLerp;
if (r == topDxRIndex && c == leftDxCIndex) {
// topLeft
accumulator +=
getDy(b, dyR, dyC, d) * inverseDxRLerp * inverseDxCLerp;
}
if (r == topDxRIndex && c == rightDxCIndex) {
// topRight
accumulator += getDy(b, dyR, dyC, d) * inverseDxRLerp * dxCLerp;
}
if (r == bottomDxRIndex && c == leftDxCIndex) {
// bottomLeft
accumulator += getDy(b, dyR, dyC, d) * dxRLerp * inverseDxCLerp;
}
if (r == bottomDxRIndex && c == rightDxCIndex) {
// bottomRight
accumulator += getDy(b, dyR, dyC, d) * dxRLerp * dxCLerp;
}
}
}
// End loop over dy
setOutput(accumulator);
}
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`}};function oJ(r){let{inputs:e,backend:t,attrs:o}=r,{images:n,dy:s}=e,{alignCorners:a}=o,i=new tI(s.shape,n.shape,a);return t.runWebGLProgram(i,[s],s.dtype)}var DP={kernelName:du,backendName:"webgl",kernelFunc:oJ};var rI=class{constructor(e,t,o,n,s){this.variableNames=["A"],this.outputShape=[];let[a,i,l,u]=e;this.outputShape=[a,t,o,u];let c=[n&&t>1?i-1:i,n&&o>1?l-1:l],p=[n&&t>1?t-1:t,n&&o>1?o-1:o],m=n?"0.5":"0.0",f;s?f="max((vec2(yRC) + vec2(0.5)) * effectiveInputOverOutputRatioRC, vec2(0.0))":f="vec2(yRC) * effectiveInputOverOutputRatioRC",this.userCode=`
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const vec2 effectiveInputOverOutputRatioRC = vec2(
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${c[0]/p[0]},
${c[1]/p[1]});
const vec2 inputShapeRC = vec2(${i}.0, ${l}.0);
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void main() {
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ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
ivec2 yRC = coords.yz;
// Fractional source index.
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vec2 sourceFracIndexRC = ${f};
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// Compute the coordinators of nearest neighbor point.
ivec2 sourceNearestRC = ivec2(
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min(inputShapeRC - 1.0, floor(sourceFracIndexRC + ${m})));
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float newValue = getA(b, sourceNearestRC.x, sourceNearestRC.y, d);
setOutput(newValue);
}
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`}};function nJ(r){let{inputs:e,backend:t,attrs:o}=r,{images:n}=e,{alignCorners:s,halfPixelCenters:a,size:i}=o,[l,u]=i,c=new rI(n.shape,l,u,s,a);return t.runWebGLProgram(c,[n],n.dtype)}var $P={kernelName:da,backendName:"webgl",kernelFunc:nJ};var oI=class{constructor(e,t,o){this.variableNames=["dy"],this.outputShape=[],this.outputShape=t;let[,n,s]=t,[,a,i]=e,l=[o&&a>1?n-1:n,o&&i>1?s-1:s],u=[o&&a>1?a-1:a,o&&i>1?i-1:i],c=l[0]/u[0],p=l[1]/u[1],m=1/c,f=1/p,d=Math.ceil(m)*2+2,h=Math.ceil(f)*2+2;this.userCode=`
void main() {
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ivec4 coords = getOutputCoords();
int b = coords[0];
int d = coords[3];
int r = coords[1];
int c = coords[2];
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float accumulator = 0.0;
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const float heightScale = float(${c});
const float widthScale = float(${p});
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const float invHeightScale = float(${m});
const float invWidthScale = float(${f});
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const int winHeight = int(${d});
const int winWidth = int(${h});
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// Compute bounds for where in dy we will look
float startRLerp = floor(float(r) * invHeightScale);
int startDyR = int(floor(startRLerp - float(winHeight / 2)));
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float startCLerp = floor(float(c) * invWidthScale);
int startDyC = int(floor(startCLerp - float(winWidth / 2)));
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// Loop over dy
for (int dyROffset = 0; dyROffset < winHeight; dyROffset++) {
int dyR = dyROffset + startDyR;
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// Guard against the window exceeding the bounds of dy
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if (dyR < 0 || dyR >= ${a}) {
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continue;
}
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for (int dyCOffset = 0; dyCOffset < winWidth; dyCOffset++) {
int dyC = dyCOffset + startDyC;
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// Guard against the window exceeding the bounds of dy
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if (dyC < 0 || dyC >= ${i}) {
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continue;
}
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float sourceFracRow =
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float(${l[0]}) *
(float(dyR) / float(${u[0]}));
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float sourceFracCol =
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float(${l[1]}) *
(float(dyC) / float(${u[1]}));
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int sourceNearestRow = int(min(
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float(int(${n}) - 1),
${o} ? float(round(sourceFracRow)) :
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float(floor(sourceFracRow))));
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int sourceNearestCol = int(min(
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float(int(${s}) - 1),
${o} ? float(round(sourceFracCol)) :
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float(floor(sourceFracCol))));
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if (r == sourceNearestRow && c == sourceNearestCol) {
accumulator += getDy(b, dyR, dyC, d);
}
}
}
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// End loop over dy
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setOutput(accumulator);
}
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`}};function sJ(r){let{inputs:e,backend:t,attrs:o}=r,{images:n,dy:s}=e,{alignCorners:a}=o,i=new oI(s.shape,n.shape,a);return t.runWebGLProgram(i,[s],s.dtype)}var RP={kernelName:fu,backendName:"webgl",kernelFunc:sJ};var nI=class{constructor(e,t){this.variableNames=["x"];let o=e.length;if(o>4)throw new Error(`WebGL backend: Reverse of rank-${o} tensor is not yet supported`);if(this.outputShape=e,o===1){this.userCode=`
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void main() {
int coord = getOutputCoords();
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setOutput(getX(${e[0]} - coord - 1));
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}
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`;return}let n=i=>t.indexOf(i)!==-1&&e[i]!==1?`${e[i]} - coords[${i}] - 1`:`coords[${i}]`,s=e.map((i,l)=>n(l)).join(","),a=ze(o);this.userCode=`
void main() {
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${a} coords = getOutputCoords();
setOutput(getX(${s}));
}
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`}};var sI=class{constructor(e,t){this.variableNames=["x"],this.packedInputs=!0,this.packedOutput=!0;let o=e.length;if(o>4)throw new Error(`WebGL backend: Reverse of rank-${o} tensor is not yet supported`);this.outputShape=e;let n=qt("rc",o),s=`${n[o-1]} + 1 < ${this.outputShape[o-1]}`,a=`${n[o-2]} + 1 < ${this.outputShape[o-2]}`,i=ze(o);o===1?this.userCode=`
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void main(){
int rc = getOutputCoords();
vec4 result = vec4(0.);
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result.r = getChannel(getX(${e[0]} - rc - 1),
${e[0]} - rc - 1);
if(${s}){
result.g = getChannel(getX(${e[0]} - (rc + 1) - 1),
${e[0]} - (rc + 1) - 1);
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}
setOutput(result);
}
`:this.userCode=`
void main() {
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${i} rc = getOutputCoords();
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vec4 result = vec4(0.);
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result.r = ${l(n.slice())};
if(${s}){
result.g = ${u(n.slice())};
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}
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if(${a}) {
result.b = ${c(n.slice())};
if(${s}) {
result.a = ${p(n.slice())};
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}
}
setOutput(result);
}
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`;function l(d){return m(d)}function u(d){return d[o-1]="("+d[o-1]+" + 1)",m(d)}function c(d){return d[o-2]="("+d[o-2]+" + 1)",m(d)}function p(d){return d[o-1]="("+d[o-1]+" + 1)",d[o-2]="("+d[o-2]+" + 1)",m(d)}function m(d){let h=e.map((b,_)=>f(_,d)),g=h.join(","),x=h.slice(-2).join(",");return`getChannel(getX(${g}), vec2(${x}))`}function f(d,h){return t.indexOf(d)!==-1&&e[d]!==1?`${e[d]} - ${h[d]} - 1`:`${h[d]}`}}};function iJ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{dims:s}=o,a=n.shape.length,i=y.parseAxisParam(s,n.shape);if(a===0)return Ht({inputs:{x:n},backend:t});let l=W().getBool("WEBGL_PACK_ARRAY_OPERATIONS")?new sI(n.shape,i):new nI(n.shape,i);return t.runWebGLProgram(l,[n],n.dtype)}var FP={kernelName:Nn,backendName:"webgl",kernelFunc:iJ};var iI=class{constructor(e,t,o,n){this.variableNames=["Image"],this.outputShape=[];let s=e[1],a=e[2],i=Math.sin(t).toFixed(3),l=Math.cos(t).toFixed(3);this.outputShape=e;let[u,c]=S.getImageCenter(n,s,a),p=u.toFixed(3),m=c.toFixed(3),f="";typeof o=="number"?f=`float outputValue = ${o.toFixed(2)};`:f=`
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vec3 fill = vec3(${o.join(",")});
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float outputValue = fill[coords[3]];`,this.userCode=`
void main() {
ivec4 coords = getOutputCoords();
int x = coords[2];
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int y = coords[1];
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float coordXFloat = (float(x) - ${p}) * ${l} - (float(y) - ${m}) * ${i};
float coordYFloat = (float(x) - ${p}) * ${i} + (float(y) - ${m}) * ${l};
int coordX = int(round(coordXFloat + ${p}));
int coordY = int(round(coordYFloat + ${m}));
${f}
if(coordX >= 0 && coordX < ${a} && coordY >= 0 && coordY < ${s}) {
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outputValue = getImage(coords[0], coordY, coordX, coords[3]);
}
setOutput(outputValue);
}
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`}};var OP={kernelName:Ri,backendName:"webgl",kernelFunc:({inputs:r,attrs:e,backend:t})=>{let{image:o}=r,{radians:n,fillValue:s,center:a}=e,i=t,l=new iI(o.shape,n,s,a);return i.runWebGLProgram(l,[o],o.dtype)}};var aJ=`
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// OpenGL ES does not support round function.
// The algorithm is based on banker's rounding.
float base = floor(x);
if ((x - base) < 0.5) {
return floor(x);
} else if ((x - base) > 0.5) {
return ceil(x);
} else {
if (mod(base, 2.0) == 0.0) {
return base;
} else {
return base + 1.0;
}
}
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`,lJ=Ce({opSnippet:aJ}),PP={kernelName:Sn,backendName:"webgl",kernelFunc:lJ};var uJ="return inversesqrt(x);",cJ=Ce({opSnippet:uJ,cpuKernelImpl:SR}),MP={kernelName:Tn,backendName:"webgl",kernelFunc:cJ};var mh=class{constructor(e,t,o,n,s,a,i=!0){this.variableNames=["updates","indices","defaultValue"],this.outputShape=a;let l=ze(s.length),u=ze(a.length),c="";o===1?c="i":o===2&&(c="i, j");let p=`getIndices(${c})`,m="";n===1?m="i":n===2&&(m="i, coords[1]");let f=`getUpdates(${m})`,d=t>1?"strides[j]":"strides";this.userCode=`
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${l} strides = ${l}(${s});
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void main() {
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${u} coords = getOutputCoords();
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float sum = 0.0;
bool found = false;
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for (int i = 0; i < ${e}; i++) {
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int flattenedIndex = 0;
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for (int j = 0; j < ${t}; j++) {
int index = round(${p});
flattenedIndex += index * ${d};
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}
if (flattenedIndex == coords[0]) {
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sum += ${f};
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found = true;
}
}
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setOutput(mix(getDefaultValue(), sum, float(found)));
}
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`}};function pJ(r){let{inputs:e,backend:t,attrs:o}=r,{indices:n,updates:s}=e,{shape:a}=o,{sliceRank:i,numUpdates:l,sliceSize:u,strides:c,outputSize:p}=S.calculateShapes(s,n,a),m=[p/u,u];if(p===0)return t.makeTensorInfo(a,n.dtype);let f=me({inputs:{x:n},backend:t,attrs:{shape:[l,i]}}),d=me({inputs:{x:s},backend:t,attrs:{shape:[l,u]}}),h=t.makeTensorInfo([],"float32",new Float32Array([0])),g=new mh(l,i,f.shape.length,d.shape.length,c,m),x=t.runWebGLProgram(g,[d,f,h],d.dtype),b=me({inputs:{x},backend:t,attrs:{shape:a}});return t.disposeIntermediateTensorInfo(f),t.disposeIntermediateTensorInfo(d),t.disposeIntermediateTensorInfo(x),t.disposeIntermediateTensorInfo(h),b}var LP={kernelName:Ii,backendName:"webgl",kernelFunc:pJ};var aI=class{constructor(e,t,o){this.variableNames=["c","a","b"],this.outputShape=t;let n,s;if(o>4)throw Error(`Where for rank ${o} is not yet supported`);if(o===1)s="resRC",n="resRC";else{let i=["resRC.x","resRC.y","resRC.z","resRC.w"],l=[],u=[];for(let c=0;c<t.length;c++)u.push(`${i[c]}`),c<e&&l.push(`${i[c]}`);n=l.join(),s=u.join()}let a=ze(o);this.userCode=`
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void main() {
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${a} resRC = getOutputCoords();
float cVal = getC(${n});
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if (cVal >= 1.0) {
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setOutput(getA(${s}));
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} else {
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setOutput(getB(${s}));
}
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}
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`}};function mJ(r){let{inputs:e,backend:t}=r,{condition:o,t:n,e:s}=e,a=new aI(o.shape.length,n.shape,n.shape.length);return t.runWebGLProgram(a,[o,n,s],fr(n.dtype,s.dtype))}var zP={kernelName:xs,backendName:"webgl",kernelFunc:mJ};var fJ=`
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// Stable and Attracting Fixed Point (0, 1) for Normalized Weights.
// see: https://arxiv.org/abs/1706.02515
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float scaleAlpha = ${S.SELU_SCALEALPHA};
float scale = ${S.SELU_SCALE};
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return (x >= 0.0) ? scale * x : scaleAlpha * (exp(x) - 1.0);
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`,dJ=Ce({opSnippet:fJ}),BP={kernelName:Ni,backendName:"webgl",kernelFunc:dJ};var hJ="return 1.0 / (1.0 + exp(-1.0 * x));",gJ=Ce({opSnippet:hJ}),VP={kernelName:An,backendName:"webgl",kernelFunc:gJ};var xJ=`
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if (isnan(x)) { return 0.0; }
return sign(x);
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`,yJ=Ce({opSnippet:xJ}),WP={kernelName:Ti,backendName:"webgl",kernelFunc:yJ};var bJ=Ox+`
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return sin(x);
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`,_J=Ce({opSnippet:bJ}),GP={kernelName:En,backendName:"webgl",kernelFunc:_J};var wJ=`
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float e2x = exp(x);
return (e2x - 1.0 / e2x) / 2.0;
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`,vJ=Ce({opSnippet:wJ}),UP={kernelName:Si,backendName:"webgl",kernelFunc:vJ};var kJ=`
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float epsilon = 1.1920928955078125e-7;
float threshold = log(epsilon) + 2.0;
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bool too_large = x > -threshold;
bool too_small = x < threshold;
float result;
float exp_x = exp(x);
if (too_large){
result = x;
}
else if (too_small){
result = exp_x;
}
else{
result = log(exp_x + 1.0);
}
return result;
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`,CJ=Ce({opSnippet:kJ}),jP={kernelName:Ei,backendName:"webgl",kernelFunc:CJ};var IJ=r=>{let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{blockShape:s,paddings:a}=o;y.assert(n.shape.length<=4,()=>"spaceToBatchND for rank > 4 with a WebGL backend not implemented yet");let i=s.reduce((x,b)=>x*b),l=[[0,0]];l.push(...a);for(let x=1+s.length;x<n.shape.length;++x)l.push([0,0]);let u=[],c=ZC({inputs:{x:n},backend:t,attrs:{paddings:l,constantValue:0}}),p=S.getReshaped(c.shape,s,i,!1),m=S.getPermuted(p.length,s.length,!1),f=S.getReshapedPermuted(c.shape,s,i,!1),d=me({inputs:{x:c},backend:t,attrs:{shape:p}}),h=Bt({inputs:{x:d},backend:t,attrs:{perm:m}}),g=me({inputs:{x:h},backend:t,attrs:{shape:f}});return u.push(c),u.push(d),u.push(h),u.forEach(x=>t.disposeIntermediateTensorInfo(x)),g},qP={kernelName:ha,backendName:"webgl",kernelFunc:IJ};function NJ(r){let{inputs:e,backend:t,attrs:o}=r,{sparseIndices:n,sparseValues:s,defaultValue:a}=e,{outputShape:i}=o,{sliceRank:l,numUpdates:u,strides:c,outputSize:p}=S.calculateShapes(s,n,i),m=!1,f=new mh(u,l,n.shape.length,s.shape.length,c,[p,1],m),d=t.runWebGLProgram(f,[s,n,a],s.dtype),h=me({inputs:{x:d},backend:t,attrs:{shape:i}});return t.disposeIntermediateTensorInfo(d),h}var HP={kernelName:hu,backendName:"webgl",kernelFunc:NJ};function SJ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{numOrSizeSplits:s,axis:a}=o,i=y.parseAxisParam(a,n.shape)[0],l=S.prepareSplitSize(n,s,i),u=n.shape.length,c=new Array(u).fill(0),p=n.shape.slice();return l.map(m=>{let f=[...p];f[i]=m;let d=qa({inputs:{x:n},backend:t,attrs:{begin:c,size:f}});return c[i]+=m,d})}var KP={kernelName:bs,backendName:"webgl",kernelFunc:SJ};var TJ="return sqrt(x);",EJ=Ce({opSnippet:TJ}),XP={kernelName:Dn,backendName:"webgl",kernelFunc:EJ};var AJ="return x * x;",DJ=Ce({opSnippet:AJ}),YP={kernelName:ga,backendName:"webgl",kernelFunc:DJ};var ZP="return (a - b) * (a - b);",$J=at({opSnippet:ZP,packedOpSnippet:ZP}),JP={kernelName:Fn,backendName:"webgl",kernelFunc:$J};function RJ({inputs:r,attrs:e,backend:t}){let{x:o}=r,n=xr+`
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return x > 0.0 ? 1.0 : float(${e.alpha});
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`,s=new mo(o.shape,n);return t.runWebGLProgram(s,[o],o.dtype)}var QP={kernelName:Fo,backendName:"webgl",kernelFunc:RJ};var lI=class{constructor(e,t,o){this.variableNames=["x"],this.outputShape=o;let n=o.length,s=ze(o.length),a=ze(o.length),i="";if(n===1)i="coords * strides + begin";else{let l=0;i=o.map((u,c)=>(l++,o.length===1?`coords * strides[${c}] + begin[${c}]`:`coords[${l-1}] * strides[${c}] + begin[${c}]`)).join(",")}this.userCode=`
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${s} begin = ${s}(${e});
${s} strides = ${s}(${t});
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void main() {
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${a} coords = getOutputCoords();
setOutput(getX(${i}));
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}
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`}};function FJ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{begin:s,end:a,strides:i,beginMask:l,endMask:u,ellipsisMask:c,newAxisMask:p,shrinkAxisMask:m}=o,{nonStrided:f,$begin:d,$strides:h,size:g,newShape:x,outShape:b}=sr.sliceInfo(n.shape,s,a,i,l,u,c,p,m),_=me({inputs:{x:n},backend:t,attrs:{shape:x}}),w;if(f){let D=qa({inputs:{x:_},backend:t,attrs:{begin:d,size:g}});w=me({inputs:{x:D},backend:t,attrs:{shape:b}}),t.disposeIntermediateTensorInfo(D)}else if(b.some(D=>D===0))w=t.makeTensorInfo(b,n.dtype,[]);else if(t.shouldExecuteOnCPU([_])){let F=t.texData.get(_.dataId).values,M=Ie(_.shape,_.dtype,F),z=ER(b,M,h,d);w=t.makeTensorInfo(b,_.dtype,z.values)}else{let A=new lI(d,h,b);w=t.runWebGLProgram(A,[_],_.dtype)}let C=me({inputs:{x:w},backend:t,attrs:{shape:b}});return t.disposeIntermediateTensorInfo(_),t.disposeIntermediateTensorInfo(w),C}var eM={kernelName:Ai,backendName:"webgl",kernelFunc:FJ};var OJ="return tan(x);",PJ=Ce({opSnippet:OJ}),tM={kernelName:Di,backendName:"webgl",kernelFunc:PJ};var MJ=`
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float e2x = exp(-2.0 * abs(x));
return sign(x) * (1.0 - e2x) / (1.0 + e2x);
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`,LJ=Ce({opSnippet:MJ}),rM={kernelName:Pn,backendName:"webgl",kernelFunc:LJ};var uI=class{constructor(e,t){this.variableNames=["A"];let o=new Array(e.length);for(let a=0;a<o.length;a++)o[a]=e[a]*t[a];this.outputShape=o,this.rank=o.length;let n=ze(this.rank),s=zJ(e);this.userCode=`
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void main() {
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${n} resRC = getOutputCoords();
setOutput(getA(${s}));
}
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`}};function zJ(r){let e=r.length;if(e>5)throw Error(`Tile for rank ${e} is not yet supported`);if(e===1)return`imod(resRC, ${r[0]})`;let t=["resRC.x","resRC.y","resRC.z","resRC.w","resRC.u"],o=[];for(let n=0;n<r.length;n++)o.push(`imod(${t[n]}, ${r[n]})`);return o.join()}function cI(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{reps:s}=o;if(n.dtype==="string"){let u=t.readSync(n.dataId).map(m=>y.decodeString(m)),c=Ie(n.shape,n.dtype,u),p=DR(c,s);return t.makeTensorInfo(p.shape,p.dtype,p.values)}let a=new uI(n.shape,s);return t.runWebGLProgram(a,[n],n.dtype)}var oM={kernelName:wo,backendName:"webgl",kernelFunc:cI};function BJ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n}=e,{k:s,sorted:a}=o,i=t.readSync(n.dataId),[l,u]=$R(i,n.shape,n.dtype,s,a);return[t.makeTensorInfo(l.shape,l.dtype,l.values),t.makeTensorInfo(u.shape,u.dtype,u.values)]}var nM={kernelName:$i,backendName:"webgl",kernelFunc:BJ};function VJ(r){let{inputs:e,attrs:t,backend:o}=r,{axis:n}=t,{x:s}=e;Yi(s,"unique"),console.warn("WARNING: ","UI might be locked temporarily as data is being downloaded");let a=o.readSync(s.dataId),{outputValues:i,outputShape:l,indices:u}=RR(a,n,s.shape,s.dtype);return[o.makeTensorInfo(l,s.dtype,i),o.makeTensorInfo([u.length],"int32",u)]}var sM={kernelName:gu,backendName:"webgl",kernelFunc:VJ};function WJ(r){let{inputs:e,backend:t,attrs:o}=r,{value:n}=e,{axis:s}=o;s<0&&(s+=n.shape.length);let a=n,i=a.shape.length,l=n.shape[s],u=new Array(i-1),c=0;for(let h=0;h<i;h++)h!==s&&(u[c++]=a.shape[h]);let p=[],m=new Array(i).fill(0),f=a.shape.slice();f[s]=1;let d=new Array(l);for(let h=0;h<d.length;h++){m[s]=h;let g=qa({inputs:{x:a},backend:t,attrs:{begin:m,size:f}}),x=me({inputs:{x:g},backend:t,attrs:{shape:u}});d[h]=x,p.push(g)}return p.forEach(h=>t.disposeIntermediateTensorInfo(h)),d}var iM={kernelName:_s,backendName:"webgl",kernelFunc:WJ};var pI=class{constructor(e,t){this.variableNames=["x","segmentIds"];let o=e.windowSize,n=e.batchSize,s=e.inSize,a=e.numSegments,i=a*Math.ceil(s/o);this.outputShape=[n,i];let l="0.0",u="sumValue",c=Math.floor(o/4)*4,p=o%4,m=`
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sumValue += dot(values, segFilter);
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`,f="";s%o>0&&(f=`
if (inIdx < 0 || inIdx >= ${s}) {
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return initializationValue;
}
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`);let d="";s%o>0&&(d=`
if (inIdx < 0 || inIdx >= ${s}) {
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return -1.0;
}
`),this.userCode=`
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const float initializationValue = ${l};
float getValue(int batch, int inIdx) {
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${f}
return getX(batch, inIdx);
}
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float getSegmentIdAtIndex(int inIdx) {
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${d}
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return getSegmentIds(inIdx);
}
void main() {
ivec2 coords = getOutputCoords();
int batch = coords[0];
int outIdx = coords[1];
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int inOffset = int(floor(float(outIdx) / float(
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${a})) * float(${o}));
int currentSeg = int(mod(float(outIdx), float(${a})));
float sumValue = 0.0;
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for (int i = 0; i < ${c}; i += 4) {
int inIdx = inOffset + i;
vec4 values = vec4(
getValue(batch, inIdx),
getValue(batch, inIdx + 1),
getValue(batch, inIdx + 2),
getValue(batch, inIdx + 3)
);
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vec4 segFilter = vec4(
int(getSegmentIdAtIndex(inIdx)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 1)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 2)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 3)) == currentSeg ? 1 : 0
);
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${m}
}
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int inIdx = inOffset + ${c};
if (${p===1}) {
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vec4 values = vec4(
getValue(batch, inIdx),
initializationValue,
initializationValue,
initializationValue
);
int inIdxSeg = int(getSegmentIdAtIndex(inIdx));
vec4 segFilter = vec4(
int(getSegmentIdAtIndex(inIdx)) == currentSeg ? 1 : 0,
0,
0,
0
);
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${m}
} else if (${p===2}) {
vec4 values = vec4(
getValue(batch, inIdx),
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getValue(batch, inIdx + 1),
initializationValue,
initializationValue
);
vec4 segFilter = vec4(
int(getSegmentIdAtIndex(inIdx)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 1)) == currentSeg ? 1 : 0,
0,
0
);
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${m}
} else if (${p===3}) {
vec4 values = vec4(
getValue(batch, inIdx),
getValue(batch, inIdx + 1),
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getValue(batch, inIdx + 2),
initializationValue
);
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vec4 segFilter = vec4(
int(getSegmentIdAtIndex(inIdx)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 1)) == currentSeg ? 1 : 0,
int(getSegmentIdAtIndex(inIdx + 2)) == currentSeg ? 1 : 0,
0
);
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${m}
}
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setOutput(${u});
}
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`}};function GJ(r){let{inputs:e,backend:t,attrs:o}=r,{x:n,segmentIds:s}=e,{numSegments:a}=o,i=n.shape.length,l=[],u=0,c=S.getAxesPermutation([u],i),p=n;c!=null&&(p=Bt({inputs:{x:n},backend:t,attrs:{perm:c}}),l.push(p),u=S.getInnerMostAxes(1,i)[0]);let m=S.segment_util.computeOutShape(p.shape,u,a),f=y.sizeFromShape([p.shape[u]]),d=me({inputs:{x:p},backend:t,attrs:{shape:[-1,f]}});l.push(d);let h=xu(n.dtype),g=(w,C,D,A,F)=>{let M=w.shape[0],z=w.shape[1],G=S.segment_util.segOpComputeOptimalWindowSize(z,F),U={windowSize:G,inSize:z,batchSize:M,numSegments:F},H=new pI(U,C),J=t.compileAndRun(H,[w,D],A);if(l.push(J),J.shape[1]===F)return J;let Y=JC({backend:t,attrs:{start:0,stop:F,step:1,dtype:"float32"}}),X=cI({inputs:{x:Y},backend:t,attrs:{reps:[z/G]}});return l.push(Y),l.push(X),g(J,C,X,A,F)},x=g(d,"unsortedSegmentSum",s,h,a),b=me({inputs:{x},backend:t,attrs:{shape:m}}),_=b;if(c!=null){l.push(b);let w=S.getUndoAxesPermutation(c);_=Bt({inputs:{x:_},backend:t,attrs:{perm:w}})}return l.forEach(w=>t.disposeIntermediateTensorInfo(w)),_}var aM={kernelName:xa,backendName:"webgl",kernelFunc:GJ};var UJ=[jO,qO,iF,lF,uF,cF,mF,fF,dF,hF,yF,bF,_F,wF,kF,vF,CF,NF,IF,SF,TF,EF,AF,$F,RF,MF,zF,BF,WF,KR,jF,HF,KF,qF,YF,ZF,XF,JF,QF,eO,oO,nO,sO,aO,lO,iO,uO,cO,pO,mO,fO,dO,gO,xO,bO,_O,wO,vO,CO,IO,NO,SO,TO,EO,AO,DO,$O,HR,RO,GF,FO,OO,PO,XR,MO,LO,zO,VO,BO,WO,GO,UO,KO,ZO,YO,JO,QO,tP,XO,oP,nP,sP,iP,aP,mP,eF,dP,hP,gP,xP,FF,yP,wP,vP,kP,CP,YR,IP,NP,OF,lP,SP,EP,TP,rF,AP,DP,$P,RP,FP,OP,PP,MP,LP,zP,BP,VP,WP,GP,UP,DF,pP,jP,qP,HP,KP,XP,YP,JP,QP,eM,cP,nF,tM,rM,oM,nM,sF,sM,iM,aM,bP];for(let r of UJ)tl(r);var lM="2.8.5";var jJ={"tfjs-core":Jb,"tfjs-backend-cpu":UA,"tfjs-backend-webgl":qR,"tfjs-data":bx,"tfjs-layers":xl,"tfjs-converter":mx,tfjs:lM};var Vt;(function(r){r[r.float32=0]="float32",r[r.int32=1]="int32",r[r.bool=2]="bool",r[r.string=3]="string",r[r.complex64=4]="complex64"})(Vt||(Vt={}));var Rl;(function(r){r[r.linear=0]="linear",r[r.relu=1]="relu",r[r.relu6=2]="relu6",r[r.prelu=3]="prelu",r[r.leakyrelu=4]="leakyrelu"})(Rl||(Rl={}));var uM;function qJ(r){uM=r.wasm.cwrap(vs,null,["number","array","number","number","array","number","number","number","number","number","number","number","number"])}function HJ(r){let{inputs:e,backend:t,attrs:o}=r,{a:n,b:s,bias:a,preluActivationWeights:i}=e;if(n.dtype!=="float32"||s.dtype!=="float32")throw new Error("_FusedMatMul for non non-float32 tensors not yet supported.");let{transposeA:l,transposeB:u,activation:c,leakyreluAlpha:p}=o,m=t.dataIdMap.get(n.dataId).id,f=t.dataIdMap.get(s.dataId).id,d=0;if(a!=null){let F=t.dataIdMap.get(a.dataId);if(F.shape.length!==1)throw new Error(`_FusedMatMul only supports rank-1 bias but got rank ${F.shape.length}.`);d=F.id}let h=i==null?0:t.dataIdMap.get(i.dataId).id,g=Rl[c];if(g==null)throw new Error(`${c} activation not yet supported for FusedConv2D in the wasm backend.`);let x=l?n.shape[2]:n.shape[1],b=u?s.shape[1]:s.shape[2],_=n.shape[0],w=t.makeOutput([_,x,b],n.dtype),C=t.dataIdMap.get(w.dataId).id,D=new Uint8Array(new Int32Array(n.shape).buffer),A=new Uint8Array(new Int32Array(s.shape).buffer);return uM(m,D,n.shape.length,f,A,s.shape.length,l,u,g,d,h,p||0,C),w}var cM={kernelName:vs,backendName:"wasm",setupFunc:qJ,kernelFunc:HJ};function Rt(r){let e;function t(n){e=n.wasm.cwrap(r,null,["number","number"])}function o(n){let{backend:s,inputs:{x:a}}=n,i=s.dataIdMap.get(a.dataId).id,l=s.makeOutput(a.shape,a.dtype),u=s.dataIdMap.get(l.dataId).id;return y.sizeFromShape(l.shape)===0||e(i,u),l}return{kernelName:r,backendName:"wasm",setupFunc:t,kernelFunc:o}}var pM=Rt(ls);function wt(r,e,t){let o;function n(a){o=a.wasm.cwrap(r,null,["number","array","number","number","array","number","number","number"])}function s(a){let{backend:i,inputs:l}=a,{a:u,b:c}=l,p=i.dataIdMap.get(u.dataId).id,m=i.dataIdMap.get(c.dataId).id,f=t!=null?t:u.dtype,d=S.assertAndGetBroadcastShape(u.shape,c.shape),h=i.makeOutput(d,f);if(y.sizeFromShape(d)===0)return h;let g=new Uint8Array(new Int32Array(u.shape).buffer),x=new Uint8Array(new Int32Array(c.shape).buffer),b=i.dataIdMap.get(h.dataId).id,_=()=>o(p,g,u.shape.le
/**
* @license
* Copyright 2017 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/**
* @license
* Copyright 2018 Google LLC
*
* Use of this source code is governed by an MIT-style
* license that can be found in the LICENSE file or at
* https://opensource.org/licenses/MIT.
* =============================================================================
*/
/**
* @license
* Copyright 2018 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*
* =============================================================================
*/
/**
* @license
* Copyright 2018 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/**
* @license
* Copyright 2019 Google LLC
*
* Use of this source code is governed by an MIT-style
* license that can be found in the LICENSE file or at
* https://opensource.org/licenses/MIT.
* =============================================================================
*/
/**
* @license
* Copyright 2019 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*
* =============================================================================
*/
/**
* @license
* Copyright 2019 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/**
* @license
* Copyright 2020 Google Inc. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/**
* @license
* Copyright 2020 Google LLC
*
* Use of this source code is governed by an MIT-style
* license that can be found in the LICENSE file or at
* https://opensource.org/licenses/MIT.
* =============================================================================
*/
/**
* @license
* Copyright 2020 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/**
* @license
* Copyright 2020 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the License);
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an AS IS BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
2021-01-10 16:35:51 +01:00
/**
* @license
* Copyright 2021 Google LLC. All Rights Reserved.
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
* =============================================================================
*/
/** @license See the LICENSE file. */
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